Difference between revisions of "Team:Marburg/Description"

 
(86 intermediate revisions by 7 users not shown)
Line 1: Line 1:
 
{{Marburg}}
 
{{Marburg}}
<html style="overflow: hidden">
+
<html>
 +
  <div>
 +
    <div class="box-dark">
 +
      <h1 class="heading">
 +
        D E S C R I P T I O N
 +
      </h1>
 +
      <hr class="line">
 +
      <img src="https://static.igem.org/mediawiki/2019/a/ac/T--Marburg--logo.svg"
 +
        class="logo"
 +
        alt="Syntex Logo">
 +
    </div>
 +
    <div style="margin-top: 10vh;">
 +
      <section class="section">
 +
        <h1 class="title"> </h1>
 +
        <p style="text-align: justify;">
 +
          We proudly present our project SYNTEX. We are establishing the new chassis <i>Synechocococcus elongatus </i>
 +
          UTEX 2973 for phototrophic Synthetic Biology.
 +
        </p>
 +
      </section>
 +
      <hr>
 +
      <section class="section grid">
 +
        <div class="sub"
 +
          onclick="popup('synechococcus_elongatus')">
 +
          <div class="sub-header">
 +
            <h1>
 +
              S Y N E C H O C O C C U S<br>
 +
              E L O N G A T U S
 +
            </h1>
 +
            <hr>
 +
          </div>
 +
          <div class="sub-content">
 +
            <div> An extensive review on the history of our chassis, recent findings and its potential future.
 +
            </div>
 +
          </div>
 +
        </div>
 +
        <div id="synechococcus_elongatus"
 +
          class="popup">
 +
          <div class="popup-container">
 +
            <div class="popup-header">
 +
              <h1 class="title">Synechococcus elongatus</h1>
 +
              <button type="button"
 +
                onclick="hide('synechococcus_elongatus')">X</button>
 +
            </div>
 +
            <div class="popup-content"
 +
              style="text-align: justify;">
 +
              <section class="section">
 +
                <p>
 +
                  <u>Introduction</u>
 +
                  <br>
 +
                  Cyanobacteria have been popular in research for centuries but recently they gained a spotlight in
 +
                  Synthetic Biology. The forefather of photosynthesis is interesting because of its simplicity, making
 +
                  it easier to engineer the system but also because of its growth speed that surpasses that of plants.
 +
                  In recent years phototrophs became the notorious revolutionizers of “Green Biotechnology”: as
 +
                  photoautotrophic organisms only require CO<sub>2</sub> and sunlight as carbon and energy source
 +
                  to
 +
                  generate biomass.<br>
 +
 
  
<head>
+
                  <br> The following introduction serves as an overview over our new chassis
    <link rel="stylesheet" type="text/css" href="./styles.css">
+
                  <i>Synechococcus elongatus</i> UTEX 2973, based on the latest research results.<br>
    <script type="text/javascript" src="./scripts.js"></script>
+
                  <br>
    <script type="text/javascript" src="https://code.jquery.com/jquery-2.2.4.min.js"></script>
+
    <link rel="stylesheet" href="https://cdnjs.cloudflare.com/ajax/libs/bulma/0.7.5/css/bulma.min.css">
+
</head>
+
  
<body style="overflow: auto; max-height: 100vh;">
+
                  <u>The organism</u>
    <center>
+
                  <br>
        <h1 class="title">Description</h1>
+
                  The gram-negative photoautotrophic cyanobacterial strain <i>Synechococcus elongatus</i> UTEX 2973 is
    </center>
+
                  an
    <br>
+
                  isolate from the 1955 described strain <i>Anacystis nidulans</i>. This strain was kept at the
    <p>
+
                  University of
        <center>"Description begins in the writers imagination but should finish in the readers mind" - <b>Stephen King</b></center>
+
                  Texas as <i>Synechococcus leopoliensis</i> UTEX 625. A colony was selected from a mixed culture of
        <br>
+
                  this
        <br>
+
                  strain, resulting in <i>Synechococcus elongatus</i> UTEX 2973. The resulting organism is genetically
We are proud to present our project Syntex. We established a new chassis that will revolutionize phototrophic Synthetic Biology. We tamed the wildtype cyanobacteria Synechococcus elongatus UTEX 2973 by restoring its natural competence, building a CRISPR-Cpf1 system for rapid genome engineering and built a MoClo compatible shuttle vector for rapid transformation. We integrated this shuttle vector in our Marburg Collection 2.0 by adding the Green Expansion, a set of parts dedicated to the Genome Engineering of cyanobacteria. Additionally we standardized cultivation and measurement for cyanobacteria to unite them with the ideals of Synthetic Biology.
+
                  very
        <br>
+
                  closely related to the well studied strain <i>Synechococcus elongatus</i> PCC 7942. With the fastest measured
        <br>
+
                  doubling time of below 90 minutes and a high tolerance to temperature and light intensity, UTEX 2973
<h1>Inspiration</h1>
+
                  is a chassis to keep an eye on.
With rising atmospheric CO2 concentrations and declining oil reserves, it is painfully obvious that the worldwide effort to change from petroleum-based industry to carbon neutral industry needs to accelerate drastically. One of the most promising key technologies right now is the use of phototrophic organisms for biotechnological applications.
+
                  Cyanobacteria have big advantages compared to other phototrophic organisms such as plants or
Hence, we decided quite early this year to devote ourselves to a project revolving around phototrophic organisms. During the design phase, we looked at different potential chassis like the model moss Physcomitrella patens, but soon stumbled upon many common obstacles that are characteristic for phototrophic chassis: time intensive culturing and complicated techniques to perform basic molecular biological methods.  
+
                  eukaryotic algae: Next to their faster growth they also convert solar energy a lot more efficiently.
This showed us why every year, only very few iGEM teams decide to use a phototrophic chassis. As research on phototrophs is key to deeply understand and better engineer autotrophic organisms that offer powerful possibilities for a more sustainable future, we saw a need to tackle these issues.
+
                  The faster generation of biomass makes cyanobacteria a potential candidate for biotechnological
Inspired by the fundamental goal of synthetic biology to simplify the process of engineering biological systems we submerged into the world of cyanobacteria, soon realizing that one of the underlying aspects of engineering seemed to be missing: standardization.  
+
                  application and their amenability to genetic modifications <a
This process is vital to create reproducible results and achieve better compatibility and interoperability throughout the scientific community. Fueled by the discovery of this missing piece in cyanobacterial research we ventured out to establish Synechococcus elongatus UTEX 2973 as the fastest and most accessible phototrophic chassis to date, streamlining workflows wherever possible.
+
                    href="https://www.ncbi.nlm.nih.gov/pubmed/30409802" target="_blank">
 +
                    (Ungerer, Wendt, Hendry, Maranas & Pakrasi, 2018) </a> make them a great platform for research.
 +
                  Despite these advantages, cyanobacteria have
 +
                  still not arrived in Synthetic Biology quite as expected. With our highly optimized chassis
 +
                  <i> Synechococcus elongatus</i> UTEX 2973 we want to change just that.
 +
                  <br>
 
<br>
 
<br>
<br>
+
                  <div class="wrap-collabsible">
 
+
                    <input id="UTEX text"
    </p>
+
                      class="toggle"
    <br>
+
                      type="checkbox">
    <div class="container">
+
                    <label for="UTEX text"
        <div class="box" style="cursor: pointer;" onclick="popup('rbn211')">
+
                      class="lbl-toggle">Comparison to the well-studied organism <i>Synechococcus
            <article class="media">
+
                        elongatus </i> PCC 7942</label>
                <div class="media-content">
+
                    <div class="collapsible-content">
                    <div class="content">
+
                      <div class="content-inner">
                        <h2><i>Synechococcus elongatus UTEX 2973</i></h2>
+
 
                         <p>
 
                         <p>
                          Here we present our new chassis, Synechococcus elongatus UTEX2973 with an intensive review on its orign, recent findings and an outlook on the potential of our new power host of Synthetic Biology.
+
                          Genome sequencing has proven that our strain is 99.8% identical to the much better
 +
                          studied strain <i>Synechococcus elongatus</i> PCC 7942, which is surprising since both
 +
                          strains were isolated from completely different locations. While UTEX 2973 tolerates
 +
                          high light intensities, PCC 7942 is photoinhibited by light intensities of less than
 +
                          half of those which UTEX 2973 can withstand. In electron microscopic examinations
 +
                          carboxysomes and polyphosphate bodies were found in both strains. Most conspicuous
 +
                          are the spherical, 30 nm sized electron-dense bodies in PCC 7942, which are not
 +
                          present in UTEX 2973. It is assumed that the bodies are carbon, which is stored in the form of
 +
                          glycogen. UTEX 2973 does not generate glycogen storage and uses the carbon directly
 +
                          for biomass production, resulting in faster growth.<br>
 +
                          Research has also proven that several changes in the photosynthetic apparatus cause
 +
                          decreased phycobilisomes but enhancement of the Photosystem I, cytochrome f and
 +
                          plastocyanin contents <a href="https://www.pnas.org/content/115/50/E11761.short?rss=1" target="_blank">
 +
                            (Ungerer <i>et al.</i>, 2018) </a> .<br>
 +
                          The most notable advantage is UTEX 2973' unprecedented doubling time. PCC 7942 takes more
 +
                          than twice as long, while only producing a third of its biomass. In an experiment
 +
                          under the same initial conditions, the dry weight of UTEX 2973 also increased to
 +
                          0.87 mg/ml, compared to only 0.33 mg/ml in PCC 7942 <a
 +
                            href="https://www.nature.com/articles/srep08132" target="_blank"> (Yu <i>et al.</i>, 2015) </a>. Unlike UTEX
 +
                          2973, PCC 7942 is naturally competent due to its porin-like proteins. These proteins
 +
                          are encoded on the inverted region in the genome so that the inversion in UTEX 2973 can
 +
                          be reversed.<br>
 +
                          <br>
 +
                          <u> But what allows UTEX 2973 to have such vital advantages? </u><br>
 +
                          When comparing both strains, one can observe that their content of amino acids
 +
                          varies greatly: the amount of amino acids in UTEX 2973 lies at 53% whereas in PCC
 +
                          7942 it is 40.9% <a href="https://www.nature.com/articles/srep41569" target="_blank"> (Mueller, Ungerer,
 +
                            Pakrasi & Maranas, 2017) </a>. This results in a
 +
                          different composition of the biomass, which is due to the discovered single
 +
                          nucleotide polymorphisms (SNP’s). Amongst other things, they cause an increased
 +
                          translation rate through a more efficient RNA polymerase.
 
                         </p>
 
                         </p>
 +
                      </div>
 
                     </div>
 
                     </div>
                </div>
+
                  </div>
            </article>
+
                  <p>
        </div>
+
    </div>
+
    <div id="rbn211" class="popup">
+
        <div class="popup-container">
+
            <div class="popup-header">
+
                <h1><i> <b>Synechococcus elongatus</i> UTEX 2973: a review</b></h1>
+
                <button type="button" onclick="hide('rbn211')">X</button>
+
            </div>
+
            <div class="popup-content" style="text-align: justify;">
+
                <p>
+
                    <b>Introduction</b>
+
 
                     <br>
 
                     <br>
                     Cyanobacteria have been popular in research for centuries but recently they gained a spotlight in
+
                     <u>Molecular aspect</u>
                     Synthetic Biology. The forefather of photosynthesis is interesting because of its simplicity, making
+
                    <br>
                     it easier to engineer the system but also because of its growth speed that surpasses that of plants.
+
                    UTEX 2973 differs from PCC 7942 in 55 single nucleotide polymorphisms and insertion-deletions,
                     In recent years phototrophs became the notorious revolutionizers of “green biotechnology”: as
+
                    as well as a 188.6 kb inversion and a six open reading frame deletion <a
                     photoautotrophic organisms, they only require CO2 and sunlight as carbon and energy sources to
+
                      href="https://www.nature.com/articles/srep41569"> (Mueller, Ungerer, Pakrasi & Maranas, 2017)
                     generate biomass.<br>
+
                    </a>. Thereby these mutations must contain the genetic determinant for UTEX’ rapid growth rate.<br>
 
+
                    Three genes have been discovered as potentially being involved in better growth. AtpA encodes
 
+
                    for the alpha subunit of an ATP-synthase with an apparent higher specific activity. The
                     <br> The following introduction serves as an overview over our new chassis
+
                    difference results in a substitution of one amino acid (Cys in PCC 7942 to Tyr in UTEX 2973).
                     Synechococcus elongatus UTEX 2973, based on the latest research results.<br>
+
                     Another significant difference lies in the ppnK encoded NAD+-kinase. Glutamin acid in PCC 7942
 +
                    substitutes into aspartic acid in UTEX 2973, which affects improved enzyme kinetics. Another
 +
                    important gene is rpaA, which improves the circadian response regulator. These adjustments
 +
                     relieve a photosynthetic bottleneck, increasing the capacity for photosynthetic electron flow.
 +
                     This ensures the usage of higher light intensities while producing more ATP and NADPH to fix
 +
                     CO<sub>2</sub>. All this ultimately leads to better growth of UTEX 2973. In this experiment, the
 +
                     SNP’s in
 +
                    UTEX 2973 were inserted into PCC 7942, thereby significantly improving its growth rate.<br>
 +
                     Thus, these minimal genetic changes cause a huge impact in growth rate and CO<sub>2</sub>
 +
                     absorption, which
 +
                    proves UTEX 2973 to be second to nothing, photorespiration and the synthesis of glyoxylate, a
 +
                    precursor of several amino acids. Some SNPs alter kinetic parameters of metabolic enzymes and
 +
                    increase the production of biomass components. Most striking is the difference in the rate of
 +
                    carbon uptake and its allocation in biomass. UTEX 2973 absorbs CO<sub>2</sub> 2.06 times more
 +
                    efficiently
 +
                    than PCC 7942.<br>
 
                     <br>
 
                     <br>
  
                     <b>The organism</b>
+
                     <u>Field of application</u>
 
                     <br>
 
                     <br>
                     The gram-negative photoautotrophic cyanobacterial strain Synechococcus elongatus UTEX 2973 is an
+
                     <i>Synechococcus elongatus </i> UTEX 2973 has the potential to change paradigms in Synthetic
                    isolate from the 1955 described strain Anacystis nidulans. This strain was kept at the University of
+
                     Biology:<br>
                    Texas as Synechococcus leopoliensis UTEX 625. A colony was selected from a mixed culture of this
+
                     With its incredibly low doubling time for phototroph standards, UTEX 2973 is eligible for rapid
                    strain, resulting in Synechococcus elongatus UTEX 2973. The resulting organism is genetically very
+
                     prototyping.<br>
                     close to the well studied strain Synechococcus elongatus PCC 7942. With the fastest measured
+
                     We need good innovations to accelerate feasible photosynthetic research. Phototrophic organisms
                     doubling time of below 90 minutes and a high tolerance to temperature and light intensity, UTEX 2973
+
                    such as plants are simply too slow inhibiting innovative progress. With our organism UTEX 2973
                     is a chassis to keep an eye on.
+
                     it is possible to test different parts and plasmids quickly, inexpensively and easily.<br>
                     Cyanobacteria have big advantages compared to other phototrophic organisms such as plants or
+
                     Cloning is a time-consuming process, especially when you have hundreds of parts in a collection.
                     eukaryotic algae: next to their faster growth they also convert solar energy a lot more efficiently.
+
                     You can quickly test all the parts in UTEX 2973 and then test the working assemblies in your
                     The faster generation of biomass makes cyanobacteria a potential candidate for biotechnological
+
                     actual organism, so UTEX acts as a technical prototype to accelerate the design build test
                     application and their amenability to genetic modifications (Ungerer, Wendt, Hendry, Maranas, &
+
                     cycle.<br>
                     Pakrasi, 2018) make them a great platform for research. Despite these advantages, cyanobacteria have
+
                     <figure style="text-align:center">
                     still not arrived in Synthetic Biology quite as we want. With our highly optimized chassis
+
                      <img style="height: 400px"
                     Synechococcus UTEX 2973 we want to change just that.
+
                        src="https://static.igem.org/mediawiki/2019/a/a2/T--marburg--DesignBuildTestLearn.jpg
 +
                                  "
 +
                        alt="design build test cycle">
 +
                      <figcaption style="max-width: 2400px; text-align: center">
 +
                        Fig.1: Design-Build-Test cycle
 +
                      </figcaption>
 +
                    </figure>
 
                     <br>
 
                     <br>
                    <div class="wrap-collabsible">
 
                        <input id="UTEX text" class="toggle" type="checkbox">
 
                        <label for="UTEX text" class="lbl-toggle">Comparison to the well-studied organism Synechococcus
 
                            elongatus PCC 7942</label>
 
                        <div class="collapsible-content">
 
                            <div class="content-inner">
 
                                <p>
 
                                    Genome sequencing has proven that our strain is 99.8% identical to the much better
 
                                    studied strain Synechococcus elongatus PCC 7942, which is surprising since both
 
                                    strains were isolated from completely different locations. While UTEX 2973 tolerates
 
                                    high light intensities, PCC 7942 is photoinhibited by light intensities of less than
 
                                    half of those which UTEX 2973 can withstand. In electron microscopic examinations
 
                                    carboxysomes and polyphosphate bodies were found in both strains. Most conspicuous
 
                                    are the spherical, 30nm sized electron-dense bodies in PCC 7942, which are not
 
                                    present in UTEX 2973. It is assumed that the bodies are carbon stored in the form of
 
                                    glycogen. UTEX 2973 does not generate glycogen storage and uses the carbon directly
 
                                    for biomass production, resulting in faster growth.<br>
 
                                    Research has also proven that several changes in the photosynthetic apparatus cause
 
                                    decreased phycobilisomes but enhancement of Photosystem I, cytochrome f and
 
                                    plastocyanin contents (Ungerer et al., 2018).<br>
 
                                    The most notable advantage is UTEX’ unparalleled doubling time. PCC 7942 takes more
 
                                    than twice as long, while only producing a third of its biomass. In an experiment
 
                                    under the same initial conditions, the dry weight of UTEX 2973 also increased to
 
                                    0.87 mg/ml, compared to only 0.33 mg/ml in PCC 7942 (Yu et al., 2015). Unlike UTEX
 
                                    2973, PCC 7942 is naturally competent due to its porin-like proteins. These proteins
 
                                    are encoded on the inverted region in the genome so that inversion in UTEX 2973 can
 
                                    be reversed.<br>
 
                                    <br>
 
                                    But what allows UTEX 2973 to have such vital advantages?<br>
 
                                    <br>
 
                                    When comparing both strains, one can observe that their content of amino acids
 
                                    varies greatly: the amount of amino acids in UTEX 2973 lies at 53% whereas in PCC
 
                                    7942 it is 40.9% (Mueller, Ungerer, Pakrasi, & Maranas, 2017). This results in a
 
                                    different composition of the biomass, which is due to the discovered single
 
                                    nucleotide polymorphisms (SNP’s). Among other things, they cause an increased
 
                                    translation rate through a more efficient RNA polymerase. In addition, UTEX 2973
 
                                    increases.<br>
 
                                </p>
 
                            </div>
 
                        </div>
 
                    </div>
 
 
                     <p>
 
                     <p>
                        <br>
+
                      If an assembly didn't work, it's easy to locate the error, optimize the construct design and get
                        <b>Molecular aspect</b>
+
                      the desired result quickly.<br>
                        <br>
+
                      As a photoautotrophic prokaryote, UTEX 2973 is a simple organism that is easy to work with.
                        UTEX 2973 differs from PCC 7942 in 55 single nucleotide polymorphisms and insertion-deletions,
+
                      Plants as eukaryotes are much more complicated, so the work and research become more
                        as well as a 188.6 kb inversion and a six open reading frame deletion (Mueller, Ungerer,
+
                      complex.<br>
                        Pakrasi, & Maranas, 2017). Thereby these mutations must contain the genetic determinant for
+
                      So if you want to advance photosynthetic research, you can, for example, analyze and modify
                        UTEX’ rapid growth rate.<br>
+
                      pathways on this prokaryot without much effort. UTEX 2973 is perfect to design engineering and
                        Three genes have been discovered as potentially being involved in better growth. AtpA encodes
+
                      principles in an easy chassis and afterwards apply it all to a higher organism.<br>
                        for the alpha subunit of an ATP-synthase with an apparent higher specific activity. The
+
                      UTEX 2973 can also be used to significantly enhance the process of characterization and
                        difference results in a substitution of one amino acid (Cys in PCC 7942 to Tyr in UTEX 2973).
+
                      standardization of cyanobacteria and their biological “parts-list”.<br>
                        Another significant difference lies in the ppnK encoded NAD+-kinase. Glutamin acid in PCC 7942
+
                      We have already advanced this aspect and established a reproducible “parts-list” so it is
                        substitutes into aspartic acid in UTEX 2973, which affects improved enzyme kinetics. Another
+
                      already possible to easily work with it.<br>
                        important gene is rpaA, which improves the circadian response regulator. These adjustments
+
                      <br>
                         relieve a photosynthetic bottleneck, increasing the capacity for photosynthetic electron flow.
+
                    </p>
                         This ensures the usage of higher light intensities while producing more ATP and NADPH to fix
+
                    <p>
                        CO2. All this ultimately leads to better growth of UTEX 2973. In this experiment, the SNP’s in
+
                      In "Green biotechnology” our chassis can be used to sustainably produce carbon neutral platform
                        UTEX 2973 were inserted into PCC 7942, thereby significantly improving its growth rate (Ungerer
+
                      chemicals without fossil fuels. These platform chemicals can be used to produce biofuels and
                        et al., 2018).<br>
+
                      bioplastics or carbohydrate feedstocks <a
                        Thus, these minimal genetic changes cause a huge impact in growth rate and CO2 absorption, which
+
                        href="https://www.ncbi.nlm.nih.gov/pubmed/27079574">(Song, Tan, Liang, & Lu, 2016) </a>.
                        proves UTEX 2973 to be second to nothing. photorespiration and the synthesis of glyoxylate, a
+
                      Innovations like these
                        precursor of several amino acids. Some SNPs alter kinetic parameters of metabolic enzymes and
+
                      are needed to propel the development of a sustainable, fossil fuel independent industry of
                        increase the production of biomass components. Most striking is the difference in the rate of
+
                      tomorrow.
                        carbon uptake and its allocation in biomass. UTEX 2973 absorbs CO2 2.06 times more efficiently
+
                      Many secondary metabolites have pharmaceutical benefits, such as amino acids, fatty acids,
                        than PCC 7942.<br>
+
                      macrolides, lipopeptides and amides <a href="https://www.nature.com/articles/srep08132"> (Yu et
                        <br>
+
                         al., 2015)</a>. The cyanobacteria strain <i>Synechocystis
 +
                         sp. </i> PCC 6803 already serves as a brilliant example for the application of cyanobacteria: it
 +
                      has
 +
                      been genetically modified to secrete fatty acids and thus to avoid costly biomass recovery in
 +
                      the production of photosynthetically produced, sustainable biofuels
 +
                      <a href="https://www.ncbi.nlm.nih.gov/pubmed/21482809"> (Liu, Sheng, & Curtiss, 2011) </a>.
 +
                      <br> <br>
 +
                      Establishing UTEX 2973 with its versatile capabilities could pave the way to making industrial
 +
                      biotechnology more sustainable and thus be a solution to combating climate change, one of the
 +
                      most horrific challenges humanity has ever faced. UTEX 2973 embodies progress and innovation on
 +
                      the highest level.<br>
 +
                      <br>
  
                        <b>Field of application</b>
+
                      <u>Genetic amenability</u>
                        <br>
+
                      <br>
                        Synechococcus elongatus UTEX 2973 has the potential to change paradigms in Synthetic
+
                      In recent years, the CRISPR system has enabled precise gene editing. Gene editing is well
                        Biology:<br>
+
                      feasible in UTEX 2973 with the CRISPR technology and an alternative nuclease Cas12a from the
                        With its incredibly low doubling time for phototroph standards, UTEX 2973 is eligible for rapid
+
                      organism <i>Francisella novicida</i> as Cas9 is toxic to cyanobacteria <a
                        prototyping.<br>
+
                         hre="https://www.nature.com/articles/srep39681"> (Ungerer & Pakrasi, 2016)</a>.<br>
                        We need good innovations to accelerate feasible photosynthetic research. Phototrophic organisms
+
                      Despite the loss of its natural competence, UTEX 2973 is a suitable candidate for genetic
                        such as plants are simply too slow inhibiting innovative progress. With our organism UTEX 2973
+
                      engineering.
                        it is possible to test different parts and plasmids quickly, inexpensively and easily.<br>
+
                      DNA can be easily introduced into UTEX 2973 trough triparental conjugation via <i>E. coli </i> and
                        Cloning is a time-consuming process, especially when you have hundreds of parts in a collection.
+
                      the
                        You can quickly test all the parts in UTEX 2973 and then test the working assemblies in your
+
                      self-replicating vector pANS. Shuttle vectors are of great interest as they lead to higher gene
                        actual organism, so UTEX acts as a technical prototype to accelerate the design build test
+
                      expression compared to genome integration. In addition, they retain large DNA inserts in the
                        cycle.<br>
+
                      organism even without selection pressure and are easy to transform <a
                         <figure style="text-align:center">
+
                         hre="https://www.ncbi.nlm.nih.gov/pubmed/27902432"> (Chen et al., 2016)</a>.
                            <img style="height: 300px; width: 320px;" src="https://static.igem.org/mediawiki/2019/a/a2/T--marburg--DesignBuildTestLearn.jpg
+
                      We developed facile-transforming shuttle-vectors and thus, we were able to extend the genetic
                          " alt="design build test cycle">
+
                      toolbox and simplify genetic engineering.<br>
                            <figcaption style="max-width: 2400px; text-align: center">
+
                    </p>
                                Fig.1 - design build test cycle
+
                  </p>
                            </figcaption>
+
                        </figure>
+
                        <br>
+
                        If an assembly didn't work, it's easy to locate the error, optimize the construct design and get
+
                        the desired result quickly.<br>
+
                        As a photoautotrophic prokaryote, UTEX 2973 is a simple organism that is easy to work with.
+
                        Plants as eukaryotes are much more complicated, so the work and research become more
+
                        complex.<br>
+
                        So if you want to advance photosynthetic research, you can, for example, analyze and modify
+
                        pathways on this prokaryot without much effort. UTEX 2973 is perfect to design engineering and
+
                        principles in an easy chassis and afterwards apply it all to a higher organism.<br>
+
                        UTEX 2973 can also be used to significantly enhance the process of characterization and
+
                        standardization of cyanobacteria and their biological “parts-list”.<br>
+
                        We have already advanced this aspect and established a reproducible “parts-list” so it is
+
                        already possible to easily work with it.<br>
+
                        <br>
+
                        In "Green biotechnology” our chassis can be used to sustainably produce carbon neutral platform
+
                        chemicals without fossil fuels. These platform chemicals can be used to produce biofuels and
+
                        bioplastics or carbohydrate feedstocks (Song, Tan, Liang, & Lu, 2016). Innovations like these
+
                        are needed to propel the development of a sustainable, fossil fuel independent industry of
+
                         tomorrow.
+
                        Many secondary metabolites have pharmaceutical benefits, such as amino acids, fatty acids,
+
                        macrolides, lipopeptides and amides (Yu et al., 2015). The cyanobacteria strain Synechocystis
+
                        sp. PCC 6803 already serves as a brilliant example for the application of cyanobacteria: it has
+
                        been genetically modified to secrete fatty acids and thus to avoid costly biomass recovery in
+
                        the production of photosynthetically produced, sustainable biofuels (Liu, Sheng, & Curtiss,
+
                        2011).<br>
+
                        <br>
+
                        Establishing UTEX 2973 with its versatile capabilities could pave the way to making industrial
+
                        biotechnology more sustainable and thus be a solution to combating climate change, one of the
+
                        most horrific challenges humanity has ever faced. UTEX 2973 embodies progress and innovation on
+
                        the highest level.<br>
+
                        <br>
+
  
                        <b>Genetic amenability</b>
+
                </p>
                        <br>
+
                <br>
                        In recent years, the CRISPR system has enabled precise gene editing. Gene editing is well
+
                <br>
                        feasible in UTEX 2973 with the CRISPR technology and an alternative nuclease Cpf1 from the
+
              </section>
                        organism Francisella novicida as Cas9 is toxic to cyanobacteria (Ungerer & Pakrasi, 2016).<br>
+
            </div>
                        Despite the loss of its natural competence, UTEX 2973 is a suitable candidate for genetic
+
          </div>
                        engineering.
+
        </div>
                        DNA can be easily introduced into UTEX 2973 trough triparental conjugation via E. coli and the
+
        <div class="sub"
                        self-replicating vector pANS. Shuttle vectors are of great interest as they lead to higher gene
+
          onclick="popup('strain_engineering')">
                        expression compared to genome integration. In addition, they retain large DNA inserts in the
+
          <div class="sub-header">
                        organism even without selection pressure and are easy to transform (Chen et al., 2016).
+
            <h1>
                        We developed facile-transforming shuttle-vectors and thus, we were able to extend the genetic
+
              S T R A I N<br>E N G I N E E R I N G
                        toolbox and simplify genetic engineering.<br>
+
            </h1>
 +
            <hr>
 +
          </div>
 +
          <div class="sub-content">
 +
            <div>
 +
              Here we show the results of our Strain Engineering project to tame our "wolf".
 +
            </div>
 +
          </div>
 +
        </div>
 +
        <div id="strain_engineering"
 +
          class="popup">
 +
          <div class="popup-container">
 +
            <div class="popup-header">
 +
              <h1 class="title">Strain engineering</h1>
 +
              <button type="button"
 +
                onclick="hide('strain_engineering')">X</button>
 +
            </div>
 +
            <div class="popup-content"
 +
              style="text-align: justify;">
 +
              <p>
 +
                <u>Natural Competence</u></p>
 +
              <p>One of the most important aspects when engineering an organism is the actual modification of its
 +
                genetic code.
 +
                The introduction of exogenous DNA can be done in multiple ways - through electroporation, conjugation,
 +
                heat shock or
 +
                via natural competence.<br>
 +
                Electroporation is a method in which an electrical field is applied to cells, in order to increase the
 +
                permeability of
 +
                the membrane, enabling DNA uptake not just in prokaryotic
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC210424/">(Thiel and Poo, 1989)</a>,
 +
                but also eukaryotic cells
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2975437/">(Potter and Heller, 2010)</a>.
 +
                Although relatively simple to perform, this technique is not ideal, as the success rate is rather low
 +
                and many precautions
 +
                have to be taken: salt concentration and field strength highly effect the outcome and secreted
 +
                endonucleases can degrade the
 +
                DNA beforehand <a href="https://www.sciencedirect.com/science/article/pii/S0717345818300083">(Zeaiter et
 +
                  al., 2018)</a>.<br>
 +
                Conjugation is a more complicated and laborious method where cell to cell contact is needed. Pili are
 +
                formed to transfer DNA
 +
                from one cell to another - but not all DNA can be transferred, as the plasmid that is to be conjugated
 +
                needs to harbour a
 +
                mobilization sequence <a
 +
                  href="https://www.sciencedirect.com/science/article/pii/B9780323074476000119?via%3Dihub">(Actor,
 +
                  2012)</a>.
 +
                This method is more popular in cyanobacterial research, as it overcomes the above mentioned problems
 +
                that come with
 +
                electroporation <a href="https://www.sciencedirect.com/science/article/pii/S0717345818300083">(Zeaiter
 +
                  et al., 2018)</a>.</p><br>
  
 +
              <p>And what is natural competence?</p><br>
  
 +
              <p>Natural competence was first discovered by Frederick Griffith in 1928
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2167760/">(Griffith et al., 1928)</a>
 +
                by studying different <i>Streptococcus pneumoniae</i> strains - a virulent and a non-virulent one.
 +
                Although he did not know
 +
                the biological processes behind it, he realized that genetic information can be passed on from one
 +
                bacterium to another,
 +
                as previously non-virulent strains could be transformed to virulent ones. In comparison to other types
 +
                of competence that
 +
                can e.g. be chemically induced, natural competence is the ability of cells to take up extracellular DNA
 +
                from their
 +
                environment under natural conditions.</p><br>
  
 +
              <p>Natural competence is found in different kinds of bacteria - also in cyanobacteria. Despite the fact
 +
                that there is
 +
                still much to uncover about the exact mechanisms of natural DNA uptake in cyanobacteria, previous
 +
                efforts by
 +
                <a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full#B26">Schuergers and Wilde,
 +
                  2015</a>,
 +
                <a href="https://academic.oup.com/pcp/article/42/1/63/1851484">Yoshihara et al., 2001</a>,
 +
                <a href="https://onlinelibrary.wiley.com/doi/full/10.1046/j.1365-2958.2000.02068.x">Bhaya et al., 2002
 +
                </a>
 +
                and many more have led to the construction of a preliminary model of the type IV-like pilus responsible
 +
                for natural
 +
                transformation in <i>Synechocystis sp.</i> PCC 6803
 +
                <a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full">(Wendt and Pakrasi,
 +
                  2019)</a>,
 +
                which can be seen in <i>Figure 1</i>.<br>
  
 +
                <figure style="text-align:center">
 +
                  <img style="height: 393px; width: 450px;"
 +
                    src="https://static.igem.org/mediawiki/2019/4/4c/T--Marburg--T4-Pilus.svg"
 +
                    alt="Preliminary model of the cyanobacterial transformation pilus (Type4 Pilli).">
 +
                  <figcaption style="max-width: 2400px; text-align: center">
 +
                    Fig.1 - Preliminary model of the cyanobacterial transformation pilus (Type4 Pilli). Figure after <a
 +
                      href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full">Wendt and Pakrasi,
 +
                      2019</a>.
 +
                  </figcaption>
 +
                </figure>
  
 +
                <br>
 +
<p>
 +
                In order to take up extracellular DNA several steps seem to be necessary: The double stranded DNA has to
 +
                be picked up
 +
                by the type IV-like pilus and transported through an outer membrane pore comprised of PilQ subunits
 +
                <a href="https://onlinelibrary.wiley.com/doi/full/10.1046/j.1365-2958.2000.02068.x">(Bhaya et al.,
 +
                  2002)</a>
 +
                and is then converted to single stranded DNA by a certain nuclease before being passed through an
 +
                inner membrane pore composed of ComE subunits
 +
                <a href="https://academic.oup.com/pcp/article/42/1/63/1851484">(Yoshihara et al., 2001)</a>.
 +
              </p><br>
  
 +
              <p>Early studies have tried to identify cyanobacterial strains capable of natural transformation, from
 +
                which just a few
 +
                species have been frequently chosen to serve as model organisms, including <i>Synechococcus sp.</i> PCC
 +
                7002,
 +
                <i>Synechococcus sp.</i> PCC 6803, <i>Synechococcus elongatus</i> PCC 7942
 +
                <a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full#B13">(Koksharova and Wolk,
 +
                  2002)</a>.<br>
 +
                Cyanobacterial species are known to be naturally competent, yet have been shown they have at least one
 +
                complete set of the
 +
                genes identified in the above mentioned model
 +
                <a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full">(Wendt and Pakrasi,
 +
                  2019)</a>
 +
                - one of them being <i>Synechococcus elongatus</i> PCC 7942.
 +
                This strain is closely related to <i>Synechococcus elongatus</i> UTEX 2973, in fact genome comparisons
 +
                show just 55
 +
                single nucleotide polymorphisms and indels
 +
                <a href="https://www.nature.com/articles/srep08132">(Yu et al., 2015)</a>.
 +
                Previous studies have suggested that a single point mutation in the pilN gene is responsible for the
 +
                loss of
 +
                natural competence in <i>S. elongatus</i> UTEX 2973
 +
                <a href="https://www.sciencedirect.com/science/article/pii/S1096717618301757?via%3Dihub">(Li et al.,
 +
                  2018)</a>,
 +
                so in an effort to reintroduce natural competence into this strain, intact versions of the pilN gene
 +
                from
 +
                <i>S.elongatus</i> PCC 7942 have been successfully introduced into one of the neutral sites in the
 +
                genome
 +
                of UTEX 2973 via homologous recombination
 +
                <a href="https://www.sciencedirect.com/science/article/pii/S1096717618301757?via%3Dihub">(Li et al.,
 +
                  2018)</a>,
 +
                showing that natural competence can be achieved in this strain. </p><br>
  
 +
              <p>As natural competence is the easiest and often most efficient way to incorporate exogenous DNA into an
 +
                organism,
 +
                this is a crucial feature that comes in handy for every chassis.<br>
 +
                For this reason we planned to restore the natural competence of <i>S.elongatus</i> UTEX 2973 - what
 +
                approaches we took
 +
                and how we planned all of it through can be found in our <a
 +
                  href="https://2019.igem.org/Team:Marburg/Design">design</a> section. </p><br>
 +
              <p><u>CRISPR gene editing</u></p>
 +
              <p>Clustered regularly interspaced short palindromic repeats / CRISPR associated protein (CRISPR/Cas)
 +
                systems are adaptive
 +
                immune systems in bacteria and archaea that provide sequence-specific targeting of genetic sequences, in
 +
                order to cut
 +
                exogenous DNA <a href="https://science.sciencemag.org/content/315/5819/1709">(Barrangou et al.,
 +
                  2007)</a>.<br>
 +
                Simplified systems have been a rising interest for use in genetic engineering approaches, as they can be
 +
                used as powerful
 +
                tools for precise genome alteration not just in prokaryotic, but also eukaryotic cells. This includes
 +
                integration of whole
 +
                genes, alteration of single nucleotides, knock-outs of whole genetic regions, as well as the use of the
 +
                DNA-binding property
 +
                in a multitude of applications through so called deadCas systems, where the Cas protein does not exhibit
 +
                nuclease activity
 +
                <a href="https://www.cell.com/action/showPdf?pii=S0092-8674%2814%2900604-7">(Hsu et al., 2014)</a>.</p>
 +
              <br>
  
 +
              <p>These adaptive systems incorporate invading DNA sequences, so called protospacers, into their CRISPR
 +
                array, meaning
 +
                that short sequences of DNA can be stored between identical repeat sequences. This whole array is
 +
                transcribed into a
 +
                long precursor CRISPR RNA (pre-crRNA) that is then processed into mature crRNAs that carry spacers which
 +
                serve as guides,
 +
                leading the Cas protein to their recognition sequence, where it can then exhibit nuclease activity
 +
                <a href="https://royalsocietypublishing.org/doi/10.1098/rstb.2015.0496">(Hille and Charpentier,
 +
                  2016)</a>.
 +
                Maturation of crRNAs differs in different CRISPR/Cas systems. CRISPR/Cas9 systems that are widely used
 +
                in genetic
 +
                engineering approaches need an additional transactivating crRNA (tracrRNA) for crRNA maturation, while
 +
                in CRISPR/Cas12a
 +
                (also called CRISPR/Cpf1) only the crRNA is necessary for precise targeting
 +
                <a href="https://www.nature.com/articles/cr201688">(Gao et al., 2016)</a>.<br>
 +
                Another crucial factor of these systems are the protospacer adjacent motifs (PAM). In order for the Cas
 +
                protein to
 +
                effectively bind the targeted DNA sequence, it has to be next to a PAM sequence, proving that the PAM is
 +
                an invaluable
 +
                targeting component that allows the cell to distinguish between self and non-self DNA, as the PAM
 +
                sequences cannot be
 +
                found in the CRISPR array itself, preventing the Cas protein to cut inside of it
 +
                <a href="https://www.nature.com/articles/nmeth.2649">(Mali et al., 2013)</a>.<br></p><br>
  
 +
              <p>As mentioned before, different CRISPR/Cas systems are available for genetic engineering of a large
 +
                number of organisms.
 +
                The most commonly used system is the CRISPR/Cas9 system, but another attractive system is CRISPR/Cas12a,
 +
                also called
 +
                CRISPR/Cas12a. The main differences are that Cas9 introduces blunt ends when cutting DNA, while Cas12a
 +
                produces sticky ends
 +
                and that Cas9 requires a tracrRNA for crRNA maturation, while Cas12a only needs the crRNA as a guide. In
 +
                Cas9 systems the
 +
                crRNA:tracrRNA duplex can be linked to form a single guided RNA (sgRNA), which is usually ~100nt long -
 +
                in comparison
 +
                the Cas12a crRNA is only ~43nt long
 +
                <a href="https://onlinelibrary.wiley.com/doi/full/10.1002/wrna.1481">(Swarts and Jinek, 2018)</a>.</p>
 +
              <br>
  
 +
              <figure style="text-align:center">
 +
                <img style="height: 500px; width: 500px;"
 +
                  src="https://static.igem.org/mediawiki/2019/4/43/T--Marburg--StrainEng_Cas9vsCas12a.svg"
 +
                  alt="GM crops 2018">
 +
                <figcaption style="max-width: 2400px; text-align: center">
 +
                  Fig 2: Comparison of Cas12a and Cas9.
 +
                </figcaption>
 +
              </figure>
 +
              <br>
  
 +
              <p>Both systems are of particular interest for genetic toolboxes, as they enable highly accurate genome
 +
                engineering
 +
                with a wide application range - including multiplexed alterations.</p><br>
  
                    </p>
+
              <p><u>Cyanobacterial shuttle vectors</u></p>
                    <br>
+
              <p>Cyanobacteria are known to contain multiple copy numbers of their chromosome, the unicellular
                    <br>
+
                cyanobacteria
 +
                <i>Synechococcus elongatus</i> reportedly contains 3-5
 +
                <a href="https://onlinelibrary.wiley.com/doi/full/10.1111/j.1574-6968.2011.02368.x?sid=nlm%3Apubmed">(Griese
 +
                  et al., 2011)</a>, 2-10
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4558043/">(Watanabe et al., 2015)</a> or 1-10
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3480399/">(Chen et al., 2012)</a> chromosomes per
 +
                cell,
 +
                more recent studies have counted eight chromosomes per cell
 +
                <a href="https://www.microbiologyresearch.org/content/journal/micro/10.1099/mic.0.000377">(Yu et al.,
 +
                  2016)</a>.<br>
 +
                <i>S. elongatus</i> PCC 7942 furthermore hosts two endogenous plasmids. The 46,4 kb pANL
 +
                <a href="https://www.ncbi.nlm.nih.gov/pubmed/18353436">(Chen et al., 2008)</a> which is essential and
 +
                the 7,8 kb pANS
 +
                <a href="https://www.ncbi.nlm.nih.gov/pubmed/1552863">(Van der Plas et al., 1992)</a>
 +
                which is not essential for the strain and can easily be cured
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC218494/">(Lau & Doolittle, 1979)</a>.</p><br>
  
 +
              <p>In Synthetic Biology multiple approaches can be chosen to introduce exogenous DNA into an organism.
 +
                Typically this
 +
                is done by integrating the DNA into the host genome or by transforming plasmids that contain the genes
 +
                of interest.<br>
 +
                As we learned above, the copy number of the chromosomes can be highly variable, which is a huge downside
 +
                when trying to
 +
                engineer such organisms, as genome integrations have to be introduced into every single copy.<br>
 +
                Shuttle vectors on the other hand can be stably maintained in the cells and are typically found in
 +
                higher copy numbers,
 +
                resulting in higher gene expression rates as genomic integrations
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3480399/">(Chen et al., 2012)</a>.<br>
 +
                Vectors that can be used in cyanobacteria are scarcely available, the few existing ones are mostly based
 +
                on the
 +
                RSF1010 plasmid that shows a broad host range and can be maintained in multiple cyanobacterial species,
 +
                although for
 +
                unknown reasons it is not present in high copy numbers
 +
                <a href="https://link.springer.com/article/10.1007%2FBF01568955">(Mermet-Bouvier et al., 1993)</a>.
 +
                The only shuttle vectors available that contain a native replication element of a cyanobacterial species
 +
                are those that
 +
                have been constructed from the previously mentioned pANS plasmid
 +
                <a href="https://www.sciencedirect.com/science/article/pii/0076687987530543?via%3Dihub">(Kuhlemeier &
 +
                  van Arkel, 1987</a>;
 +
                <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC217787/">Golden & Sherman, 1983)</a>.
 +
                Recent studies have shown that pANS-based shuttle vectors are present in a higher copy number than
 +
                RSF1010- or pDU1-based
 +
                vectors in cyanobacteria, clearly indicating the advantages of native replication elements. The same
 +
                study has also proven
 +
                that gene expression levels are higher when genes are expressed on the pANS-based vectors, than on pANL
 +
                or the chromosome
 +
                of <i>S. elongatus</i> <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3480399/">(Chen et al.,
 +
                  2012)</a>.<br>
 +
                In spite of these apparent advantages, many still prefer integrating DNA into the chromosome, which is
 +
                why we
 +
                incorporated parts for homologous recombination into our <a
 +
                  href="https://2019.igem.org/Team:Marburg/Design ">toolbox</a>
 +
                and successfully identified <a href="https://2019.igem.org/Team:Marburg/Parts">new neutral side for
 +
                  integration</a>.
 +
                providing invaluable tools for the community.</p><br>
 +
 +
              <p>As we are certain that self replicating vectors are essential for many workflows, especially if rapid
 +
                prototyping
 +
                is to be done in an organism, we set out to construct the world's first MoClo compatible shuttle vector
 +
                for cyanobacteria
 +
                based on the modular Golden Gate Assembly method, allowing for flexible cloning into a reliable
 +
                self-replicating system.
 +
                With our constructs there is no need for tedious selection processes that come with genomic
 +
                integrations.</p>
 +
              </p>
 +
              <br>
 +
              <br>
 
             </div>
 
             </div>
 +
          </div>
 
         </div>
 
         </div>
    </div>
+
        <div class="sub"
    <br>
+
          onclick="popup('marburg_collection')">
    <div class="container">
+
          <div class="sub-header">
        <div class="box" style="cursor: pointer;" onclick="popup('rbn212')">
+
            <h1>
            <article class="media">
+
              M A R B U R G<br>C O L L E C T I O N &ensp; 2.0
                <div class="media-content">
+
            </h1>
                    <div class="content">
+
            <hr>
                        <h2>Strain Engineering</h2>
+
          </div>
                        <p>
+
          <div class="sub-content">
                 
+
            <div>
<p>Our engineered strain is now able to take up plasmids naturally. Thanks to this we are able to modify our chassis on genomic level thanks to CRISPR-cpf1 and on a transient level thanks to our MoClo compatible shuttle vector.</p>
+
<br>
+
<p><b>Natural Competence</b></p>
+
<p>One of the most important aspects when engineering an organism is the actual modification of its genetic code.
+
The introduction of exogenous DNA can be done in multiple ways - through electroporation, conjugation, heat shock or
+
via natural competence.<br>
+
Electroporation is a method in which an electrical field is applied to cells, in order to increase the permeability of
+
the membrane, enabling DNA uptake not just in prokaryotic
+
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC210424/">(Thiel and Poo, 1989)</a>,
+
but also eukaryotic cells
+
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2975437/">(Potter and Heller, 2010)</a>.
+
Although relatively simple to perform, this technique is not ideal, as the success rate is rather low and many precautions
+
have to be taken: salt concentration and field strength highly effect the outcome and secreted endonucleases can degrade the
+
DNA beforehand  <a href="https://www.sciencedirect.com/science/article/pii/S0717345818300083">(Zeaiter et al., 2018)</a>.<br>
+
Conjugation is a more complicated and laborious method where cell to cell contact is needed. Pili are formed to transfer DNA
+
from one cell to another - but not all DNA can be transferred, as the plasmid that is to be conjugated needs to harbour a
+
mobilization sequence <a href="https://www.sciencedirect.com/science/article/pii/B9780323074476000119?via%3Dihub">(Actor, 2012)</a>.
+
This method is more popular in cyanobacterial research, as it overcomes the above mentioned problems that come with
+
electroporation <a href="https://www.sciencedirect.com/science/article/pii/S0717345818300083">(Zeaiter et al., 2018)</a>.</p><br>
+
  
<p>And what is natural competence?</p><br>
+
              We present to you the Marburg Collection 2.0, an extensive addition to the previosly established part
 +
              collection that focuses around cyanobacteria.
 +
            </div>
 +
          </div>
 +
        </div>
 +
        <div id="marburg_collection"
 +
          class="popup">
 +
          <div class="popup-container">
 +
            <div class="popup-header">
 +
              <h1 class="title">Marburg collection 2.0</h1>
 +
              <button type="button"
 +
                onclick="hide('marburg_collection')">X</button>
 +
            </div>
 +
            <div class="popup-content"
 +
              style="text-align: justify;">
 +
              <p>
 +
                <u>Golden Gate Cloning and Modular Cloning: A historical review</u>
 +
              </p>
 +
              <p>Golden Gate assembly is a novel cloning method. It is at the heart of
 +
                Synthetic Biology as it reflects the philosophy behind this area more
 +
                than anything else. To really understand the mechanics and philosophy
 +
                behind it, one has to look not only at the molecular basics but also at
 +
                its history. This cloning strategy is based on Type IIS restriction
 +
                enzymes. These enzymes have the uncommon property to cut next to their
 +
                recognition sites, allowing the user to generate short DNA overhangs of
 +
                their choice. This allows to seamlessly fuse DNA molecules together <a
 +
                  href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0003647">(Engler <i>et
 +
                    al.</i>, 2008)</a>
 +
                . Another advantage is that the restriction sites
 +
                can either remain or be completely cut off after restriction, based on
 +
                the way the user decides to integrate a restriction site. This for
 +
                example makes it possible to digest a fragment and ligate it in the same
 +
                reaction without a chance that the fragment can be cut out again. This
 +
                simultaneous restriction and ligation process is frequently termed
 +
                „Golden Gate reaction” <a
 +
                  href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0005553">(Engler <i>et
 +
                    al.</i>, 2009)</a>.</p>
 +
              <figure style="text-align:center">
 +
                <img style="height: 500px; "
 +
                  src="https://static.igem.org/mediawiki/2019/9/99/T--Marburg--Toolbox_EcoRIvsBsaI.svg
 +
                                  "
 +
                  alt="design build test cycle">
 +
                <figcaption style="max-width: 2400px; text-align: center">
 +
                  Fig.1: Type II vs. Type IIS.
 +
                </figcaption>
 +
              </figure>
 +
              <br>
 +
              <p>Pioneers in the field started to use these advancements to introduce a
 +
                syntax into cloning procedures: while researchers were previously bound
 +
                to use a variety of restriction enzymes, they can now break it down to
 +
                two enzymes usually. By standardizing at which state of a cloning
 +
                procedure which specific enzyme in conjunction with a specific entry
 +
                vector is to be used, the process of cloning becomes more streamlined
 +
                and researchers are given more time to focus on the vital questions of
 +
                their endeavor rather than the particularities of cloning. The ability
 +
                to produce overhangs of choice gave rise to the idea to standardize
 +
                these overhangs based on the function of a genetic device. Early on,
 +
                synthetic biologist saw how such a syntax complies with their philosophy
 +
                of understanding genetic components as devices and soon they started
 +
                standardizing overhangs for sequences like promoter, ribosomal binding
 +
                sites and other part “types” <a
 +
                  href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0016765 ">(Weber <i>et
 +
                    al.</i>, 2011)</a>. In this way, parts of
 +
                different genes could be fused together effortlessly. It essentially
 +
                allowed the cross compatibility of any genetic device in any organism,
 +
                even across laboratories as international standards started to be become
 +
                popular very soon. Singular devices like promoters were called “Parts”
 +
                in analogy to machine components in engineering, further rooting the
 +
                philosophy of Synthetic Biology in this cloning strategy. This type of
 +
                modular assembly of parts via Golden Gate cloning is nowadays coined as
 +
                “Modular Cloning” <a
 +
                  href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0016765 ">(Weber <i>et
 +
                    al.</i>, 2011)</a>.
 +
                Many part collections were published across the years, giving users full
 +
                access to a big amount of parts characterized in their promoter
 +
                strength, isolative capabilities and so on. Applicants were able to
 +
                create vectors from scratch using DNA parts in conjunction with a
 +
                complete data set on the activity of the parts to custom design the
 +
                plasmids they need for their specific application.
 +
                So many great thinkers advanced the progress in Modular Cloning and all
 +
                of their works were vital to carry us to the point at which we stand
 +
                these days. Here we present those that have influenced the design of our
 +
                Part Collection, the Marburg Collection, the most.</p>
 +
              <br>
 +
              <br>
 +
              <p>
 +
                <u>Modular Cloning (MoClo) by <a
 +
                    href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0016765 ">Weber <i>et
 +
                      al.</i> (2011)</a></u>
 +
              </p>
 +
              <p>The modular cloning system was the first proposing a standard for Golden
 +
                Gate based assembly. This toolbox offers five types of modules designed
 +
                mainly for eukaryotes. The modules are stored in level 0 acceptor
 +
                plasmids derived from the pUC19 backbone with a spectinomycin resistance
 +
                and a LacZα cassette as dropout for blue/white screening. Custom level 0
 +
                plasmids are assembled by flanking the sequences with BpiI recognition
 +
                sites and setting a single restriction-ligation-reaction with the
 +
                correspondent plasmid. Up to five level 0 modules are assembled in an
 +
                acceptor plasmid with ampicillin resistance and a LacZα-dropout by
 +
                restriction with BsaI to transcription units. Six transcription units can
 +
                be assembled using BpiI into level 2 multigene constructs containing a
 +
                kanamycin resistance and a Cred-dropout. Alternatively Esp3I can be used
 +
                to transfer the constructs to intermediary levels to reach higher levels
 +
                for assembly of bigger constructs. This toolbox is best for constructs
 +
                up to level 2 plasmids. Higher levels can be reached through
 +
                intermediary levels but need two restriction enzymes for the assembly.
 +
                Furthermore, it is important to know in which level the current
 +
                constructs stand to avoid messing up the acceptor plasmids for
 +
                subsequent levels.
  
<p>Natural competence was first discovered by Frederick Griffith in 1928
 
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2167760/">(Griffith et al., 1928)</a>
 
by studying different <i>Streptococcus pneumoniae</i> strains - a virulent and a non-virulent one. Although he did not know
 
the biological processes behind it, he realized that genetic information can be passed on from one bacterium to another,
 
as previously non-virulent strains could be transformed to virulent ones. In comparison to other types of competence that
 
can e.g. be chemically induced, natural competence is the ability of cells to take up extracellular DNA from their
 
environment under natural conditions.</p><br>
 
  
<p>Natural competence is found in different kinds of bacteria - also in cyanobacteria. Despite the fact that there is  
+
                One of the (in our opinion) best executions of a Modular Cloning system
still much to uncover about the exact mechanisms of natural DNA uptake in cyanobacteria, previous efforts by  
+
                is the yeast toolkit, also known as the Dueber toolbox <a
<a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full#B26">Schuergers and Wilde, 2015</a>,  
+
                  href="https://www.ncbi.nlm.nih.gov/pubmed/25871405 ">(Lee <i>et al.</i>
<a href="https://academic.oup.com/pcp/article/42/1/63/1851484">Yoshihara et al., 2001</a>,
+
                  2015)</a>. It offers a Golden Gate based system adapted for yeast. The basic
<a href="https://onlinelibrary.wiley.com/doi/full/10.1046/j.1365-2958.2000.02068.x">Bhaya et al., 2002 </a>
+
                level 0 parts are classified in eight types with optional subtypes. New
and many more have led to the construction of a preliminary model of the type IV-like pilus responsible for natural
+
                basic parts are assembled into entry plasmids by restriction with BsmBI.
transformation in <i>Synechocystis sp.</i> PCC 6803
+
                For building level 1 cassettes at least eight parts are assembled by a
<a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full">(Wendt and Pakrasi, 2019)</a>,
+
                restriction-ligation step using BsaI. The innovation of this toolkit
which can be seen in <i>Figure 1</i>.<br>
+
                compared to the previous is the use of connector sequences for level 1
 +
                and higher assembly steps. This way plasmids for yeast can be build de
 +
                novo without the need of a defined backbone. Furthermore, they integrated
 +
                a method for simple chromosomal integration by linearization of the
 +
                plasmids with NotI. On top of this the connectors can be used as
 +
                homology sequences e.g. for ligation-independent cloning, Gibson
 +
                assembly, ligase cycling reaction or yeast in vivo assembly.</p>
 +
              <br>
 +
              <br>
 +
              <p>
 +
                <u>The PhytoBrick standard: The Syntax of Syntex</u>
 +
              </p>
 +
              <p>Another significant milestone is the PhytoBrick <a
 +
                  href="https://www.ncbi.nlm.nih.gov/pubmed/26171760">(Patron <i>et al.</i>, 2015)</a>
 +
                standardization. It offers a wide standard compatible with popular
 +
                systems like MoClo aiming to create a standard focused primary on plant
 +
                engineering efforts. The iGEM competition already accepted it as an
 +
                standard and offers support for building parts designed for plants,
 +
                yeast and bacteria. This system proposes twelve defined fusion sites
 +
                applicable for the different genetic modules. The fusion sites are
 +
                divided into three major classes for promoter parts, transcribed regions
 +
                and terminator parts. These classes are divided into subclasses giving
 +
                the flexibility to use optional modules like tags, promoter, regulators
 +
                and enhancer regions. The system also proposes two types of universal
 +
                acceptor plasmids (UAPs) derived from the pSB1C3 plasmid where level 0
 +
                modules can be inserted by a single restriction-ligation step with BpiI
 +
                or BsmBI respectively. </p>
 +
              <br>
 +
              <br>
 +
              <p>
 +
                <u> Marburg Collection 2.0: The green expansion</u>
 +
              </p>
 +
              <p> We expanded on the Marburg Collection, a toolbox established by iGEM
 +
                Marburg in 2018. Thanks to its broad host range design inspired by the
 +
                “Dueber toolbox” from <a href="https://www.ncbi.nlm.nih.gov/pubmed/25871405 ">Lee <i>et al.</i>
 +
                  2015</a> we were able to apply it to our
 +
                new chassis <i>Synechococcus elongatus</i> UTEX2973. The design is extremely
 +
                simple: LVL 0 parts are the basic foundation, they contain one promoter,
 +
                ribosomal binding site or terminator etc. Up to eight LVL 0 parts are used
 +
                to create a LVL1 plasmid with a single transcription unit. The Marburg
 +
                Collection 2.0 presents a set of new parts adding several new functions,
 +
                expanding the range of hosts to use our parts on over the genera of
 +
                cyanobacteria as well as supporting new design options such as
 +
                Placeholder assemblies and vectors for genomic integrations.</p>
 +
              <br>
 +
              <br>
 +
              <p>
 +
                <u>Enabling high throughput assembly with flexible placeholder parts</u>
 +
              </p>
 +
              <p>Some applications require the construction of an array of higher LVL
 +
                parts that only differ in one part. We ourselves encountered this when
 +
                we screened the promoters of the Marburg Collection in our new chassis:
 +
                These plasmids all were the same except for a different promoter.
 +
                A “placeholder” is a part that gets assembled in a LVL1 construct just
 +
                like any other part. Internal cutting sites however make it possible to
 +
                cut this part out in a second cloning cycle in order to replace it with a
 +
                non-placeholder part of the same type. The advantages of using
 +
                placeholder in high throughput assemblies are clear: A seven part
 +
                assembly usually requires to screen multiple colonies before you find
 +
                the right one, meaning that a lot of test digesting or sequencing is
 +
                involved. This is feasible if you want to construct only a few parts.
 +
                For high throughput assemblies, however, the cost and time does not
 +
                scale well enough. A two part assembly however has an extremely high
 +
                success rate, meaning that in most cases it is sufficient to just pick
 +
                one colony to get correct sequencing results. </p>
 +
              <center>
 +
                <figure>
 +
                  <img style="height: 600px;"
 +
                    src="https://static.igem.org/mediawiki/2019/4/4e/T--Marburg--Toolbox_Promotorlibrary.svg"
 +
                    alt="Placeholder image">
 +
                  <figcaption>
 +
                    <b>Fig. 2</b> Schematic workflow for creating the promoter library.
 +
                  </figcaption>
 +
                </figure>
 +
              </center>
 +
              <br>
 +
              <p> This two step assembly heavily cuts down the invested workload and the
 +
                cost per sample. We designed these placeholders so they could aid us in
 +
                our assemblies. By removing limiting cost and time factors with a smart
 +
                design option we managed to close a big bottle neck on the way to
 +
                upscaling Modular cloning.
 +
                Aside from a use in screening, these parts can also be utilized to find
 +
                new sequences with a function: A set of mixed together defined
 +
                oligonucleotides with randomized bases can be
 +
                inserted into a test vector containing a placeholder. This library of
 +
                test vectors is introduced into a host to test the biological
 +
                characteristics of that sequence. A fluorescence reporter on the vector
 +
                can be used to sort out cells with the intended characteristic, for
 +
                example in an adequate high throughput screening method like FACS. This
 +
                massively accelerates the search for parts with a desired quality. Such
 +
                brute force approaches are becoming very popular in recent Synthetic
 +
                Biology <a href="https://www.ncbi.nlm.nih.gov/pubmed/25419741 ">(Smanski et al., 2014)</a>.</p>
 +
              <br><br>
  
<figure style="text-align:center">
+
              <p>
      <img style="height: 393px; width: 450px;"
+
                <u>A small part in our Collection, a big application for the future</u>
          src="https://static.igem.org/mediawiki/2019/4/4c/T--Marburg--T4-Pilus.svg" alt="Preliminary model of the cyanobacterial transformation pilus (Type4 Pilli).">
+
              </p>
      <figcaption style="max-width: 2400px; text-align: center">
+
          Fig.1 - Preliminary model of the cyanobacterial transformation pilus (Type4 Pilli). Figure after <a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full">Wendt and Pakrasi, 2019</a>.
+
      </figcaption>
+
  </figure>
+
  
<br>
+
              <p> Just until recently Synthetic Biology was lacking a genetic platform for
In order to take up extracellular DNA several steps seem to be necessary: The double stranded DNA has to be picked up
+
                cyanobacterial hosts: The introduction of the panS based
by the type IV-like pilus and transported through an outer membrane pore comprised of PilQ subunits
+
                self-replicating shuttle vector marks the first useable plasmid <a
<a href="https://onlinelibrary.wiley.com/doi/full/10.1046/j.1365-2958.2000.02068.x">(Bhaya et al., 2002)</a>
+
                  href="https://www.ncbi.nlm.nih.gov/pubmed/27902432 ">(Chen
and is then converted to single stranded DNA by a certain nuclease before being passed through an
+
                  <i>et al.</i>, 2016)</a>, however it is not MoClo compatible. Therefore <a
inner membrane pore composed of ComE subunits
+
                  href="http://parts.igem.org/Part:BBa_K3228069">BBa_K3228069</a>
<a href="https://academic.oup.com/pcp/article/42/1/63/1851484">(Yoshihara et al., 2001)</a>.</p><br>
+
                is in our eyes the most important addition to our Marburg
 +
                Collection 2.0. This part contains the minimal replication region of
 +
                panS for cyanobacteria and a spectinomycin cassette; additionally the
 +
                ColE1 origin of replication can be used for cloning in <i>E. coli</i> and <i>V.
 +
                  natriegens</i>. A second version with different flanks and a kanamycin
 +
                resistance enables the construction of LVL 2 plasmids that can contain
 +
                up to seven genes. We utilized the broad host-range flexibility of the
 +
                Marburg Collection to add a full set of organisms to its list of
 +
                applicable hosts.
 +
                These parts are the heart piece of the green expansion as they describe
 +
                the world's first MoClo compatible shuttle vector for cyanobacteria.
  
<p>Early studies have tried to identify cyanobacterial strains capable of natural transformation, from which just a few
+
                <figure style="text-align:center">
species have been frequently chosen to serve as model organisms, including <i>Synechococcus sp.</i> PCC 7002,
+
                  <img style="height: 500px;"
<i>Synechococcus sp.</i> PCC 6803, <i>Synechococcus elongatus</i> PCC 7942
+
                    src="https://static.igem.org/mediawiki/2019/d/d3/T--Marburg--Toolbox_Shuttle_Lvl1.svg
<a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full#B13">(Koksharova and Wolk, 2002)</a>.<br>
+
                                  "
Cyanobacterial species are known to be naturally competent, yet have been shown they have at least one complete set of the
+
                    alt="design build test cycle">
genes identified in the above mentioned model
+
                  <figcaption style="max-width: 2400px; text-align: center">
<a href="https://www.frontiersin.org/articles/10.3389/fmicb.2019.01259/full">(Wendt and Pakrasi, 2019)</a>  
+
                    <b> Fig.3</b>: MoClo compatible shuttle vector for cyanobacteria.
- one of them being <i>Synechococcus elongatus</i> PCC 7942.
+
                  </figcaption>
This strain is closely related to <i>Synechococcus elongatus</i> UTEX 2973, in fact genome comparisons show just 55
+
                </figure>
single nucleotide polymorphisms and indels
+
              </p>
<a href="https://www.nature.com/articles/srep08132">(Yu et al., 2015)</a>.
+
              <br><br>
Previous studies have suggested that a single point mutation in the pilN gene is responsible for the loss of
+
              <p>
natural competence in <i>S. elongatus</i> UTEX 2973
+
                <u>Characterizing parts for our new chassis</u>
<a href="https://www.sciencedirect.com/science/article/pii/S1096717618301757?via%3Dihub">(Li et al., 2018)</a>,
+
              </p>
so in an effort to reintroduce natural competence into this strain, intact versions of the pilN gene from
+
              <p> To make sure that scientists are able to use our toolbox as convenient
<i>S.elongatus</i> PCC 7942 have been successfully introduced into one of the neutral sites in the genome
+
                as they do now with <i>Vibrio natriegens</i>, it is necessary to characterize
of UTEX 2973 via homologous recombination
+
                our part collection for our new chassis.
<a href="https://www.sciencedirect.com/science/article/pii/S1096717618301757?via%3Dihub">(Li et al., 2018)</a>,
+
                We established a workflow suited to cyanobacteria to characterize all
showing that natural competence can be achieved in this strain. </p><br>
+
                our parts in a consistent way. We realized that with a phototrophic
 +
                chassis we needed to rethink some common procedures to respect species
 +
                specific requirements.
 +
                Before the actual measurements many pretests such as establishing growth
 +
                conditions in well plates had to be done. We evaluated many
 +
                possibilities regarding growth of precultures and measuring procedures
 +
                and present you the best way to measure activities in UTEX 2973.</p>
 +
              <br>
 +
              <br>
 +
              <p>
 +
                <u>Modular Engineering of Genome Areas (M.E.G.A.)</u>
 +
              </p>
  
<p>As natural competence is the easiest and often most efficient way to incorporate exogenous DNA into an organism,  
+
              <p>While a plasmid based introduction of genes is the most common way to
this is a crucial feature that comes in handy for every chassis.<br>
+
                introduce genes into a species, genomic integrations are also a highly
For this reason we planned to restore the natural competence of <i>S.elongatus</i> UTEX 2973 - what approaches we took
+
                demanded application. Often genes develop a very different phenotype in
and how we planned all of it through can be found in our <a href="https://2019.igem.org/Team:Marburg/Design">design</a> section. </p><br>
+
                genomic contexts due to a lower copy number and interactions with
 
+
                neighbouring regions. The knockout of a gene by inserting a sequence in
 
+
                its position is also a well approved way to study genetic interactions
 
+
                in an organism.
 
+
                Our M.E.G.A. expansion enables the user to design vectors that can
<p><b>CRISPR gene editing</b></p>
+
                insert one or more genes into an integration site on the target genome.
<p>Clustered regularly interspaced short palindromic repeats / CRISPR associated protein (CRISPR/Cas) systems are adaptive
+
                Next to three conventional integration sites for cyanobacteria (NSI to
immune systems in bacteria and archaea that provide sequence-specific targeting of genetic sequences, in order to cut
+
                NSIII) that are used worldwide <a href="https://www.ncbi.nlm.nih.gov/pubmed/16303742">(Holtman <i>et
exogenous DNA <a href="https://science.sciencemag.org/content/315/5819/1709">(Barrangou et al., 2007)</a>.<br>
+
                    al.</i>, 2005)</a> we used a rational
Simplified systems have been a rising interest for use in genetic engineering approaches, as they can be used as powerful
+
                design approach to create two new ones (artificial neutral integration
tools for precise genome alteration not just in prokaryotic, but also eukaryotic cells. This includes integration of whole
+
                site options, aNSo I and aNSo II) that, according to RNA-sequencing data
genes, alteration of single nucleotides, knock-outs of whole genetic regions, as well as the use of the DNA-binding property
+
                <a href="https://2019.igem.org/Team:Marburg/Model#anso">(See: design of integration sites in
in a multitude of applications through so called deadCas systems, where the Cas protein does not exhibit nuclease activity
+
                  modelling)</a>, don’t show any
<a href="https://www.cell.com/action/showPdf?pii=S0092-8674%2814%2900604-7">(Hsu et al., 2014)</a>.</p><br>
+
                transcriptional activity from neighboring genes. Therefore they are
 
+
                perfect candidates for a stable expression independent from cellular
<p>These adaptive systems incorporate invading DNA sequences, so called protospacers, into their CRISPR array, meaning
+
                contexts.</p>
that short sequences of DNA can be stored between identical repeat sequences. This whole array is transcribed into a
+
              <figure style="text-align:center">
long precursor CRISPR RNA (pre-crRNA) that is then processed into mature crRNAs that carry spacers which serve as guides,
+
                <img style="height: 400px;"
leading the Cas protein to their recognition sequence, where it can then exhibit nuclease activity
+
                  src="https://static.igem.org/mediawiki/2019/d/d4/T--Marburg--Toolbox_GenomintegrationANSO.svg
<a href="https://royalsocietypublishing.org/doi/10.1098/rstb.2015.0496">(Hille and Charpentier, 2016)</a>.
+
                                  "
Maturation of crRNAs differs in different CRISPR/Cas systems. CRISPR/Cas9 systems that are widely used in genetic
+
                  alt="design build test cycle">
engineering approaches need an additional transactivating crRNA (tracrRNA) for crRNA maturation, while in CRISPR/Cas12a
+
                <figcaption style="max-width: 2400px; text-align: center">
(also called CRISPR/Cpf1) only the crRNA is necessary for precise targeting
+
                  <b>Fig.4</b>: Integration into the genome.
<a href="https://www.nature.com/articles/cr201688">(Gao et al., 2016)</a>.<br>
+
                </figcaption>
Another crucial factor of these systems are the protospacer adjacent motifs (PAM). In order for the Cas protein to
+
              </figure>
effectively bind the targeted DNA sequence, it has to be next to a PAM sequence, proving that the PAM is an invaluable
+
              <br>
targeting component that allows the cell to distinguish between self and non-self DNA, as the PAM sequences cannot be
+
              <p>Using
found in the CRISPR array itself, preventing the Cas protein to cut inside of it
+
                the input from our bioinformatical analysis we can now provide the
<a href="https://www.nature.com/articles/nmeth.2649">(Mali et al., 2013)</a>.<br></p><br>
+
                tools to engineer the genome of many cyanobacterial strains in a
 
+
                modulated fashion. Thanks to this expansion nothing stands in the way of
<p>As mentioned before, different CRISPR/Cas systems are available for genetic engineering of a large number of organisms.
+
                tailoring custom strains to specific demands, be it of academical
The most commonly used system is the CRISPR/Cas9 system, but another attractive system is CRISPR/Cas12a, also called
+
                nature for Synthetic Biology and foundational research on photosynthesis
CRISPR/Cpf1. The main differences are that Cas9 introduces blunt ends when cutting DNA, while Cas12a produces sticky ends
+
                or for industrial applications such as the design of producer strains
and that Cas9 requires a tracrRNA for crRNA maturation, while Cas12a only needs the crRNA as a guide. In Cas9 systems the
+
                for biotechnological processes.
crRNA:tracrRNA duplex can be linked to form a single guided RNA (sgRNA), which is usually ~100nt long - in comparison
+
              </p>
the Cas12a crRNA is only ~43nt long
+
              <br>
<a href="https://onlinelibrary.wiley.com/doi/full/10.1002/wrna.1481">(Swarts and Jinek, 2018)</a>.</p><br>
+
              <br>
 
+
              <p>
<figure style="text-align:center">
+
                <u> Presenting a broad range arsenal of reporters for the green expansion </u>
      <img style="height: 500px; width: 500px;"
+
              </p>
          src="https://static.igem.org/mediawiki/2019/4/43/T--Marburg--StrainEng_Cas9vsCas12a.svg" alt="GM crops 2018">
+
              <p>Reporters are an essential basic tool of Synthetic Biology. We present a
      <figcaption style="max-width: 2400px; text-align: center">
+
                set of reporters for a broad range of applications:
          Fig 2: Comparison of Cas12a and Cas9.
+
                From cyanobacteria specific well established reporters like sYFP to
      </figcaption>
+
                mTurqoise, an alternative than be used in conjunction with YFP for a
  </figure>
+
                dual fluorescent reporter system <a href="https://2019.igem.org/Team:Marburg/Composite_Part">(best
  <br>
+
                  composite part)</a> we offer a variety of fluorescence based
 
+
                reporters for part characterizations.
  <p>Both systems are of particular interest for genetic toolboxes, as they enable highly accurate genome engineering
+
                To harness the incredible potential of novel findings in luminescence,
  with a wide application range - including multiplexed alterations.</p><br>
+
                we also provide a set of luminescence reporters based on NanoLuc, that
 
+
                strike out as completely cell independent, orthogonal reporters: The
  <p><b>Cyanobacterial shuttle vectors</b></p>
+
                mutated version teLuc is especially well suited for cyanobacteria as it
  <p>Cyanobacteria are known to contain multiple copy numbers of their chromosome, the unicellular cyanobacteria
+
                bypasses the natural absorption of cyanobacterial photopigments and
  <i>Synechococcus elongatus</i> reportedly contains 3-5
+
                Antares2 uses a FRET system that makes it possible to combine it with
  <a href="https://onlinelibrary.wiley.com/doi/full/10.1111/j.1574-6968.2011.02368.x?sid=nlm%3Apubmed">(Griese et al., 2011)</a>, 2-10
+
                NanoLuc as a dual luminescence reporter system.
  <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4558043/">(Watanabe et al., 2015)</a> or 1-10
+
                Additionally we provide two reporters that have the ability to sense two
  <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3480399/">(Chen et al., 2012)</a> chromosomes per cell,
+
                very crucial cellular parameters in cyanobacteria: Phluorin2 for the
  more recent studies have counted eight chromosomes per cell
+
                detection of intracellular pH values that are crucial for rapid growth
    <a href="https://www.microbiologyresearch.org/content/journal/micro/10.1099/mic.0.000377">(Yu et al., 2016)</a>.<br>
+
                and rxYFP for the detection of the redox status, that can have crippling
<i>S. elongatus</i> PCC 7942 furthermore hosts two endogenous plasmids. The 46,4 kb pANL
+
                effects on cellular effects by damaging DNA, lipids and proteins
<a href="https://www.ncbi.nlm.nih.gov/pubmed/18353436">(Chen et al., 2008)</a> which is essential and the 7,8 kb pANS
+
                through reactive oxygen species (ROS).
<a href="https://www.ncbi.nlm.nih.gov/pubmed/1552863">(Van der Plas et al., 1992)</a>
+
              </p>
which is not essential for the strain and can easily be cured
+
              </p>
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC218494/">(Lau & Doolittle, 1979)</a>.</p><br>
+
            </div>
 
+
          </div>
<p>In Synthetic Biology multiple approaches can be chosen to introduce exogenous DNA into an organism. Typically this
+
is done by integrating the DNA into the host genome or by transforming plasmids that contain the genes of interest.<br>
+
As we learned above, the copy number of the chromosomes can be highly variable, which is a huge downside when trying to  
+
engineer such organisms, as genome integrations have to be introduced into every single copy.<br>
+
Shuttle vectors on the other hand can be stably maintained in the cells and are typically found in higher copy numbers,
+
resulting in higher gene expression rates as genomic integrations
+
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3480399/">(Chen et al., 2012)</a>.<br>
+
Vectors that can be used in cyanobacteria are scarcely available, the few existing ones are mostly based on the
+
RSF1010 plasmid that shows a broad host range and can be maintained in multiple cyanobacterial species, although for  
+
unknown reasons it is not present in high copy numbers
+
<a href="https://link.springer.com/article/10.1007%2FBF01568955">(Mermet-Bouvier et al., 1993)</a>.
+
The only shuttle vectors available that contain a native replication element of a cyanobacterial species are those that  
+
have been constructed from the previously mentioned pANS plasmid
+
<a href="https://www.sciencedirect.com/science/article/pii/0076687987530543?via%3Dihub">(Kuhlemeier & van Arkel, 1987</a>;
+
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC217787/">Golden & Sherman, 1983)</a>.
+
Recent studies have shown that pANS-based shuttle vectors are present in a higher copy number than RSF1010- or pDU1-based
+
vectors in cyanobacteria, clearly indicating the advantages of native replication elements. The same study has also proven
+
that gene expression levels are higher when genes are expressed on the pANS-based vectors, than on pANL or the chromosome
+
of <i>S. elongatus</i> <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3480399/">(Chen et al., 2012)</a>.<br>
+
In spite of these apparent advantages, many still prefer integrating DNA into the chromosome, which is why we  
+
incorporated parts for homologous recombination into our <a href="https://2019.igem.org/Team:Marburg/Design ">toolbox</a>
+
and successfully identified <a href="https://2019.igem.org/Team:Marburg/Parts">new neutral side for integration</a>.
+
providing invaluable tools for the community.</p><br>
+
 
+
<p>As we are certain that self replicating vectors are essential for many workflows, especially if rapid prototyping
+
is to be done in an organism, we set out to construct the world's first MoClo compatible shuttle vector for cyanobacteria
+
based on the modular Golden Gate Assembly method, allowing for flexible cloning into a reliable self-replicating system.  
+
With our constructs there is no need for tedious selection processes that come with genomic integrations.</p>
+
                        </p>
+
                    </div>
+
                </div>
+
            </article>
+
 
         </div>
 
         </div>
    </div>
+
         <div class="sub"
    <div id="rbn212" class="popup">
+
          onclick="popup('project_inspiration')">
         <div class="popup-container">
+
          <div class="sub-header">
            <div class="popup-header">
+
            <h1>
                <h1>Strain Engineering</h1>
+
              P R O J E C T<br>I N S P I R A T I O N
                <button type="button" onclick="hide('rbn212')">X</button>
+
            </h1>
            </div>
+
            <hr>
            <div class="popup-content" style="text-align: justify; text-align-last: justify;">
+
          </div>
                <p>
+
          <div class="sub-content">
                    Abstract?
+
            <div> The inspiration for our project.
                </p>
+
                <br>
+
                <br>
+
                <div class="wrap-collabsible">
+
                    <input id="collapsible212_1" class="toggle" type="checkbox">
+
                    <label for="collapsible212_1" class="lbl-toggle">
+
                        <h3 class="title">Unterprojekt1</h3>
+
                    </label>
+
                    <div class="collapsible-content">
+
                        <div class="content-inner" style="text-align: left; text-align-last: left;">
+
                            <p>
+
                                Hier bitte den für diese Stelle zutreffenden Text einfügen, wenn dieser fertig ist.
+
                            </p>
+
                        </div>
+
                    </div>
+
                </div>
+
                <br>
+
                <div class="wrap-collabsible">
+
                    <input id="collapsible212_2" class="toggle" type="checkbox">
+
                    <label for="collapsible212_2" class="lbl-toggle">
+
                        <h3 class="title">Unterprojekt2</h3>
+
                    </label>
+
                    <div class="collapsible-content">
+
                        <div class="content-inner" style="text-align: left; text-align-last: left;">
+
                            <p>
+
                                Hier bitte den für diese Stelle zutreffenden Text einfügen, wenn dieser fertig ist.
+
                            </p>
+
                        </div>
+
                    </div>
+
                </div>
+
 
             </div>
 
             </div>
 +
          </div>
 
         </div>
 
         </div>
    </div>
+
         <div id="project_inspiration"
    <br>
+
          class="popup">
    <div class="container">
+
          <div class="popup-container">
         <div class="box" style="cursor: pointer;" onclick="popup('rbn213')">
+
            <article class="media">
+
                <div class="media-content">
+
                    <div class="content">
+
                        <h2>Marburg Collection 2.0</h2>
+
                        <p>
+
                          We present the Marburg Collection 2.0, an extensive addition to our part collection. In the green expansion we provide the first MoClo compatible shuttle vector for transient modification as well as the M.E.G.A. expansion for Modularized Engineering of Genome Areas. Next to that we provide a new assembly tool, the placeholders which we used to build standardized measurement vectors for cyanobacteria and a set of reporters we deemed absolutely useful for our chassis.
+
                        </p>
+
                    </div>
+
                </div>
+
            </article>
+
        </div>
+
    </div>
+
    <div id="rbn213" class="popup">
+
        <div class="popup-container">
+
 
             <div class="popup-header">
 
             <div class="popup-header">
                <h1>Marburg Collection 2.0</h1>
+
              <h1 class="title"> Project Inspiration</h1>
                <button type="button" onclick="hide('rbn213')">X</button>
+
              <button type="button"
 +
                onclick="hide('project_inspiration')">X</button>
 
             </div>
 
             </div>
             <div class="popup-content" style="text-align: justify; text-align-last: justify;">
+
             <div class="popup-content">
                <p>
+
              <p>
                      We present the Marburg Collection 2.0, an extensive addition to our part collection. In the green expansion we provide the first MoClo compatible shuttle vector for transient modification as well as the M.E.G.A. expansion for Modularized Engineering of Genome Areas. Next to that we provide a new assembly tool, the placeholders which we used to build standardized measurement vectors for cyanobacteria and a set of reporters we deemed absolutely useful for our chassis.
+
                With rising atmospheric CO<sub>2</sub> concentrations and declining oil reserves, it is painfully
                </p>
+
                obvious that the worldwide effort to change from petroleum-based industry to carbon neutral industry
                 <br>
+
                needs to accelerate drastically. One of the most promising key technologies right now is the use of
                 <br>
+
                phototrophic organisms for biotechnological applications.
                 <div class="wrap-collabsible">
+
                Hence, we decided quite early this year to devote ourselves to a project revolving around phototrophic
                    <input id="collapsible213_1" class="toggle" type="checkbox">
+
                organisms. During the design phase, we looked at different potential chassis like the model moss <i>
                    <label for="collapsible213_1" class="lbl-toggle">
+
                  Physcomitrella patens </i>, but soon stumbled upon many common obstacles that are characteristic for
                        <h3 class="title">Unterprojekt1</h3>
+
                 phototrophic chassis: time intensive culturing and complicated techniques to perform basic molecular
                    </label>
+
                 biological methods.
                    <div class="collapsible-content">
+
                 This showed us why every year, only very few iGEM teams decide to use a phototrophic chassis. As
                        <div class="content-inner" style="text-align: left; text-align-last: left;">
+
                research on phototrophs is key to deeply understand and better engineer autotrophic organisms that offer
                            <p>
+
                powerful possibilities for a more sustainable future, we saw a need to tackle these issues.
                                Hier bitte den für diese Stelle zutreffenden Text einfügen, wenn dieser fertig ist.
+
                Inspired by the fundamental goal of Synthetic Biology to simplify the process of engineering biological
                            </p>
+
                systems we submerged into the world of cyanobacteria, soon realizing that one of the underlying aspects
                        </div>
+
                of engineering seemed to be missing: standardization.
                    </div>
+
                 This process is vital to create reproducible results and achieve better compatibility and
                 </div>
+
                 interoperability throughout the scientific community. Fueled by the discovery of this missing piece in
                 <br>
+
                 cyanobacterial research we ventured out to establish<i> Synechococcus elongatus </i> UTEX 2973 as the
                 <div class="wrap-collabsible">
+
                fastest and most accessible phototrophic chassis to date, streamlining workflows wherever possible.
                    <input id="collapsible213_2" class="toggle" type="checkbox">
+
              </p>
                    <label for="collapsible213_2" class="lbl-toggle">
+
                        <h3 class="title">Unterprojekt2</h3>
+
                    </label>
+
                    <div class="collapsible-content">
+
                        <div class="content-inner" style="text-align: left; text-align-last: left;">
+
                            <p>
+
                                Hier bitte den für diese Stelle zutreffenden Text einfügen, wenn dieser fertig ist.
+
                            </p>
+
                        </div>
+
                    </div>
+
                </div>
+
 
             </div>
 
             </div>
 +
          </div>
 
         </div>
 
         </div>
    </div>
+
        <div class="sub"
    <br>
+
          onclick="popup('references')">
    <div class="container">
+
          <div class="sub-header">
        <div class="box" style="cursor: pointer;" onclick="popup('rbn214')">
+
            <h1>
            <article class="media">
+
              R E F E R E N C E S
                <div class="media-content">
+
            </h1>
                    <div class="content">
+
            <hr>
                        <h2>References</h2>
+
          </div>
                        <p>
+
          <div class="sub-content">
                            ...
+
            <div>
                        </p>
+
              Here we list up our references.
                    </div>
+
             </div>
                </div>
+
          </div>
             </article>
+
 
         </div>
 
         </div>
    </div>
+
        <div id="references"
    <div id="rbn214" class="popup">
+
          class="popup">
        <div class="popup-container">
+
          <div class="popup-container">
 
             <div class="popup-header">
 
             <div class="popup-header">
                <h1>References</h1>
+
              <h1 class="title">References</h1>
                <button type="button" onclick="hide('rbn214')">X</button>
+
              <button type="button"
 +
                onclick="hide('references')">X</button>
 
             </div>
 
             </div>
             <div class="popup-content" style="text-align: justify; text-align-last: justify;">
+
             <div class="popup-content"
                 <p>
+
              style="text-align: justify;">
                    Abstract?
+
              <p>
                 </p>
+
                Cambray, G., Guimaraes, J. C., Mutalik, V. K., Lam, C., Mai, Q.-A., Thimmaiah, T., Carothers J. M.,
                 <br>
+
                Arkin A. P., Endy, D. (2013). Measurement and modeling of intrinsic transcription terminators. Nucleic
                 <br>
+
                Acids Research, 41(9), 5139–5148. (https://doi.org/10.1093/nar/gkt163)<br>
                 <div class="wrap-collabsible">
+
                <br>Haiyao Huang (2008). Design and Characterization of Artificial Transcriptional Terminators.
                    <input id="collapsible214_1" class="toggle" type="checkbox">
+
                Massachusetts Institute of Technology, Boston. Retrieved from
                    <label for="collapsible214_1" class="lbl-toggle">
+
                https://core.ac.uk/download/pdf/4410463.pdf <br><br>
                        <h3 class="title">Unterprojekt1</h3>
+
                Help: Terminators/Measurement. Retrieved from https://parts.igem.org/Help:Terminators/Measurement<br>
                    </label>
+
                <br>Chen, Y., Taton, A., Go, M., London, R. E., Pieper, L. M., Golden, S. S., & Golden, J. W. (2016).
                    <div class="collapsible-content">
+
                Self-replicating shuttle vectors based on pANS, a small endogenous plasmid of the unicellular
                        <div class="content-inner" style="text-align: left; text-align-last: left;">
+
                cyanobacterium Synechococcus elongatus PCC 7942. Microbiology (Reading, England), 162(12), 2029–2041.
                            <p>
+
                (https://doi.org/10.1099/mic.0.000377)<br>
                                Hier bitte den für diese Stelle zutreffenden Text einfügen, wenn dieser fertig ist.
+
                 <br>Mueller, T. J., Ungerer, J. L., Pakrasi, H. B., & Maranas, C. D. (2017). Identifying the Metabolic
                            </p>
+
                Differences of a Fast-Growth Phenotype in Synechococcus UTEX 2973. Scientific Reports, 7, 41569.
                        </div>
+
                 (https://doi.org/10.1038/srep41569)<br>
                    </div>
+
                <br>Song, K., Tan, X., Liang, Y., & Lu, X. (2016). The potential of Synechococcus elongatus UTEX 2973
                 </div>
+
                for sugar feedstock production. Applied Microbiology and Biotechnology, 100(18), 7865–7875.
                 <br>
+
                (https://doi.org/10.1007/s00253-016-7510-z)<br>
                 <div class="wrap-collabsible">
+
                 <br>Ungerer, J., & Pakrasi, H. B. (2016). Cpf1 Is A Versatile Tool for CRISPR Genome Editing Across
                    <input id="collapsible214_2" class="toggle" type="checkbox">
+
                 Diverse Species of Cyanobacteria. Scientific Reports, 6, 39681. (https://doi.org/10.1038/srep39681)<br>
                    <label for="collapsible214_2" class="lbl-toggle">
+
                 <br>Ungerer, J., Wendt, K. E., Hendry, J. I., Maranas, C. D., & Pakrasi, H. B. (2018). Comparative
                        <h3 class="title">Unterprojekt2</h3>
+
                genomics reveals the molecular determinants of rapid growth of the cyanobacterium Synechococcus
                    </label>
+
                elongatus UTEX 2973. Proceedings of the National Academy of Sciences of the United States of America,
                    <div class="collapsible-content">
+
                115(50), E11761-E11770. (https://doi.org/10.1073/pnas.1814912115)<br>
                        <div class="content-inner" style="text-align: left; text-align-last: left;">
+
                <br>Wendt, K. E., Ungerer, J., Cobb, R. E., Zhao, H., & Pakrasi, H. B. (2016). Crispr/cas9 mediated
                            <p>
+
                targeted mutagenesis of the fast growing cyanobacterium Synechococcus elongatus UTEX 2973. Microbial
                                Hier bitte den für diese Stelle zutreffenden Text einfügen, wenn dieser fertig ist.
+
                Cell Factories, 15(1), 115. (https://doi.org/10.1186/s12934-016-0514-7)<br>
                            </p>
+
                <br>Yu, J., Liberton, M., Cliften, P. F., Head, R. D., Jacobs, J. M., Smith, R. D., . . . Pakrasi, H. B.
                        </div>
+
                (2015). Synechococcus elongatus UTEX 2973, a fast growing cyanobacterial chassis for biosynthesis using
                    </div>
+
                light and CO2. Scientific Reports, 5(1), 742. (https://doi.org/10.1038/srep08132)<br>
                 </div>
+
                <br>Liu, X., Sheng, J., & Curtiss, R. (2011). Fatty acid production in genetically modified
 +
                cyanobacteria. Proceedings of the National Academy of Sciences of the United States of America, 108(17),
 +
                6899–6904. (https://doi.org/10.1073/pnas.1103014108)<br>
 +
                <br>Tan, X., Hou, S., Song, K., Georg, J., Klähn, S., Lu, X., & Hess, W. R. (2018). The primary
 +
                transcriptome of the fast-growing cyanobacterium Synechococcus elongatus UTEX 2973. Biotechnology for
 +
                Biofuels, 11(1), 218. (https://doi.org/10.1186/s13068-018-1215-8)<br>
 +
                <br>Bayes, T. (1763). LII. An essay towards solving a problem in the doctrine of chances. By the late
 +
                Rev. Mr. Bayes, F. R. S. communicated by Mr. Price, in a letter to John <br>
 +
                <br>Canton, A. M. F. R. S. Philosophical Transactions of the Royal Society of London, 53, 370–418.
 +
                (https://doi.org/10.1098/rstl.1763.0053)<br>
 +
                <br>Lecun, Y., Bottou, L., Bengio, Y., & Haffner, P. (1998). Gradient-based learning applied to document
 +
                recognition. Proceedings of the IEEE, 86(11), 2278–2324. (https://doi.org/10.1109/5.726791)<br>
 +
                <br>Ren, S., He, K., Girshick, R., & Sun, J. (2017). Faster R-CNN: Towards Real-Time Object Detection
 +
                with Region Proposal Networks. IEEE Transactions on Pattern Analysis and Machine Intelligence, 39(6),
 +
                1137–1149. (https://doi.org/10.1109/TPAMI.2016.2577031)<br>
 +
                <br>Samuel, A. L. (1959). Some Studies in Machine Learning Using the Game of Checkers. IBM Journal of
 +
                Research and Development, 3(3), 210–229. (https://doi.org/10.1147/rd.33.0210)<br>
 +
                <br>Avery, O. T., MacLeod, C. M., & McCarty, M. (1944). Studies on the Chemical Nature of the Substance
 +
                Inducing Transformation of Pneumococcal Types: Induction of Transformation by a Desoxyribonucleic Acid
 +
                Fraction Isolated from Pneumococcus Type Iii. Journal of Experimental Medicine, 79(2), 137–158.
 +
                (https://doi.org/10.1084/jem.79.2.137)<br>
 +
                <br>Bawa, A. S., & Anilakumar, K. R. (2013). Genetically modified foods: Safety, risks and public
 +
                concerns—a review. Journal of Food Science and Technology, 50(6), 1035–1046.
 +
                (https://doi.org/10.1007/s13197-012-0899-1)<br>
 +
                <br>Bevan, M. W., & Chilton, M. D. (1982). Multiple transcripts of T-DNA detected in nopaline crown gall
 +
                tumors. Journal of Molecular and Applied Genetics, 1(6), 539–546.<br>
 +
                <br>Black, R. E., Allen, L. H., Bhutta, Z. A., Caulfield, L. E., de Onis, M., Ezzati, M., … Maternal and
 +
                Child Undernutrition Study Group. (2008). Maternal and child undernutrition: Global and regional
 +
                exposures and health consequences. Lancet (London, England), 371(9608), 243–260.
 +
                (https://doi.org/10.1016/S0140-6736(07)61690-0)<br>
 +
                <br>Bravo, A., Gill, S. S., & Soberón, M. (2007). Mode of action of Bacillus thuringiensis Cry and Cyt
 +
                toxins and their potential for insect control. Toxicon, 49(4), 423–435.
 +
                (https://doi.org/10.1016/j.toxicon.2006.11.022)<br>
 +
                <br>Cohen, S. N., Chang, A. C. Y., Boyer, H. W., & Helling, R. B. (1973). Construction of Biologically
 +
                Functional Bacterial Plasmids In Vitro. Proceedings of the National Academy of Sciences, 70(11),
 +
                3240–3244. (https://doi.org/10.1073/pnas.70.11.3240)<br>
 +
                <br>Cong, L., Ran, F. A., Cox, D., Lin, S., Barretto, R., Habib, N., … Zhang, F. (2013). Multiplex
 +
                Genome Engineering Using CRISPR/Cas Systems. Science, 339(6121), 819–823.
 +
                (https://doi.org/10.1126/science.1231143)<br>
 +
                <br>Crick, F. H. C., Watson, J. D., & Bragg, W. L. (1954). The complementary structure of
 +
                deoxyribonucleic acid. Proceedings of the Royal Society of London. Series A. Mathematical and Physical
 +
                Sciences, 223(1152), 80–96. (https://doi.org/10.1098/rspa.1954.0101)<br>
 +
                <br>DeMayo, F. J., & Spencer, T. E. (2014). CRISPR Bacon: A Sizzling Technique to Generate Genetically
 +
                Engineered Pigs. Biology of Reproduction, 91(3). (https://doi.org/10.1095/biolreprod.114.123935)<br>
 +
                <br>Evolution of Corn. (n.d.). Retrieved 21 October 2019 from
 +
                https://learn.genetics.utah.edu/content/evolution/corn/ <br>
 +
                <br>Fraley, RobertT. (1983). Liposome-mediated delivery of tobacco mosaic virus RNA into petunia
 +
                protoplast: Improved conditions for liposome-protoplast incubations. Plant Molecular Biology, 2(1).
 +
                (https://doi.org/10.1007/BF00187570)<br>
 +
                <br>Genetically Engineered Crops: Experiences and Prospects. (n.d.).
 +
                (https://doi.org/10.17226/23395)<br>
 +
                <br>Gentechnik: Was genau ist das? (n.d.). Retrieved 21 October 2019, from Bundesministerium für
 +
                Ernährung und Landwirtschaft website:
 +
                https://www.bmel.de/DE/Landwirtschaft/Pflanzenbau/Gentechnik/_Texte/Gentechnik_Wasgenauistdas.html <br>
 +
                <br>Gilbert, N. (2013). Case studies: A hard look at GM crops. Nature News, 497(7447), 24.
 +
                (https://doi.org/10.1038/497024a)<br>
 +
                <br>GM Crops List—GM Approval Database | ISAAA.org. (n.d.). Retrieved 21 October 2019, from
 +
                http://www.isaaa.org/gmapprovaldatabase/cropslist/default.asp <br>
 +
                <br>Herrera‐Estrella, L., Block, M. D., Messens, E., Hernalsteens, J.-P., Montagu, M. V., & Schell, J.
 +
                (1983). Chimeric genes as dominant selectable markers in plant cells. The EMBO Journal, 2(6), 987–995.
 +
                (https://doi.org/10.1002/j.1460-2075.1983.tb01532.x)<br>
 +
                 <br>Hilbeck, A., Binimelis, R., Defarge, N., Steinbrecher, R., Székács, A., Wickson, F., … Wynne, B.
 +
                (2015). No scientific consensus on GMO safety. Environmental Sciences Europe, 27(1), 4.
 +
                (https://doi.org/10.1186/s12302-014-0034-1)<br>
 +
                 <br>Humphrey, J. H., West, K. P., & Sommer, A. (1992). Vitamin A deficiency and attributable mortality
 +
                 among under-5-year-olds. Bulletin of the World Health Organization, 70(2), 225–232.<br>
 +
                <br>Insecticidal Plants: The Tech and Safety of GM Bt Crops. (2015, August 10). Retrieved 21 October
 +
                2019, from Science in the News website: http://sitn.hms.harvard.edu/flash/2015/insecticidal-plants/ <br>
 +
                <br>Is it safe to eat GM crops? | Royal Society. (n.d.). Retrieved 21 October 2019, from
 +
                https://royalsociety.org/topics-policy/projects/gm-plants/is-it-safe-to-eat-gm-crops/ <br><br>
 +
                ISAAA Brief 54-2018: Executive Summary | ISAAA.org. (n.d.). Retrieved 21 October 2019, from
 +
                https://www.isaaa.org/resources/publications/briefs/54/executivesummary/default.asp <br>
 +
                <br>Marris, C. (2001). Public views on GMOs: Deconstructing the myths. EMBO Reports, 2(7), 545–548.
 +
                (https://doi.org/10.1093/embo-reports/kve142)<br>
 +
                <br>Mutant Variety Database. (n.d.). Retrieved 21 October 2019, from
 +
                https://mvd.iaea.org/#!Search?page=1&size=500&sortby=Name&sort=ASC <br>
 +
                <br>Nicolia, A., Manzo, A., Veronesi, F., & Rosellini, D. (2014). An overview of the last 10 years of
 +
                genetically engineered crop safety research. Critical Reviews in Biotechnology, 34(1), 77–88.
 +
                (https://doi.org/10.3109/07388551.2013.823595) <br>
 +
                <br>Nirenberg, M. W., Matthaei, J. H., Jones, O. W., Martin, R. G., & Barondes, S. H. (1963).
 +
                Approximation of genetic code via cell-free protein synthesis directed by template RNA. Federation
 +
                Proceedings, 22, 55–61.<br>
 +
                <br>Oladosu, Y., Rafii, M. Y., Abdullah, N., Hussin, G., Ramli, A., Rahim, H. A., Usman, M. (2016).
 +
                Principle and application of plant mutagenesis in crop improvement: A review. Biotechnology &
 +
                Biotechnological Equipment, 30(1), 1–16. (https://doi.org/10.1080/13102818.2015.1087333)<br>
 +
                <br>Publications Office of the European Union. (2010, November 11). A decade of EU-funded GMO research
 +
                (2001-2010). [Website]. Retrieved 21 October 2019, from
 +
                https://op.europa.eu:443/en/publication-detail/-/publication/d1be9ff9-f3fa-4f3c-86a5-beb0882e0e65 <br>
 +
                <br>Ran, F. A., Hsu, P. D., Wright, J., Agarwala, V., Scott, D. A., & Zhang, F. (2013). Genome
 +
                engineering using the CRISPR-Cas9 system. Nature Protocols, 8(11), 2281–2308.
 +
                (https://doi.org/10.1038/nprot.2013.143)<br>
 +
                <br>Sanchis, V. (2011). From microbial sprays to insect-resistant transgenic plants: History of the
 +
                biospesticide <Emphasis Type="Italic">Bacillus thuringiensis</Emphasis>. A review. Agronomy for
 +
                Sustainable Development, 31(1), 217–231. (https://doi.org/10.1051/agro/2010027) <br>
 +
                <br>Sanford, J. C. (1990). Biolistic plant transformation. Physiologia Plantarum, 79(1), 206–209.
 +
                (https://doi.org/10.1111/j.1399-3054.1990.tb05888.x)<br>
 +
                <br>Schouten, H. J., Krens, F. A., & Jacobsen, E. (2006). Cisgenic plants are similar to traditionally
 +
                bred plants: International regulations for genetically modified organisms should be altered to exempt
 +
                cisgenesis. EMBO Reports, 7(8), 750–753. (https://doi.org/10.1038/sj.embor.7400769)<br>
 +
                <br>Snell, C., Bernheim, A., Bergé, J.-B., Kuntz, M., Pascal, G., Paris, A., & Ricroch, A. E. (2012).
 +
                Assessment of the health impact of GM plant diets in long-term and multigenerational animal feeding
 +
                trials: A literature review. Food and Chemical Toxicology, 50(3), 1134–1148.
 +
                (https://doi.org/10.1016/j.fct.2011.11.048)<br>
 +
                <br>Snow, A. A., & Palma, P. M. (1997). Commercialization of Transgenic Plants: Potential Ecological
 +
                Risks. BioScience, 47(2), 86–96. (https://doi.org/10.2307/1313019)<br>
 +
                <br>Tabashnik, B. E. (1994). Evolution of Resistance to Bacillus Thuringiensis. Annual Review of
 +
                Entomology, 39(1), 47–79. (https://doi.org/10.1146/annurev.en.39.010194.000403)<br>
 +
                <br>Time to call out the anti-GMO conspiracy theory – Mark Lynas. (n.d.). Retrieved 21 October 2019,
 +
                from (http://www.marklynas.org/2013/04/time-to-call-out-the-anti-gmo-conspiracy-theory/)<br>
 +
                <br>Werth, J., Boucher, L., Thornby, D., Walker, S., & Charles, G. (2013). Changes in weed species since
 +
                the introduction of glyphosate-resistant cotton. Crop and Pasture Science, 64(8), 791–798.
 +
                (https://doi.org/10.1071/CP13167)<br>
 +
                <br>e, X., Al-Babili, S., Klöti, A., Zhang, J., Lucca, P., Beyer, P., & Potrykus, I. (2000). Engineering
 +
                the Provitamin A (β-Carotene) Biosynthetic Pathway into (Carotenoid-Free) Rice Endosperm. Science,
 +
                287(5451), 303–305. (https://doi.org/10.1126/science.287.5451.303)<br>
 +
                <br>Zhang, C., Wohlhueter, R., & Zhang, H. (2016). Genetically modified foods: A critical review of
 +
                their promise and problems. Food Science and Human Wellness, 5(3), 116–123.
 +
                (https://doi.org/10.1016/j.fshw.2016.04.002)<br>
 +
                <br>Zimmer, C. (2013, May 16). From Fearsome Predator to Man’s Best Friend. The New York Times.
 +
                Retrieved from
 +
                https://www.nytimes.com/2013/05/16/science/dogs-from-fearsome-predator-to-mans-best-friend.html <br>
 +
                <br>Goedhart, J., von Stetten, D., Noirclerc-Savoye, M., Lelimousin, M., Joosen, L., Hink, M. A.,
 +
                Royant, A. (2012). Structure-guided evolution of cyan fluorescent proteins towards a quantum yield of
 +
                93%. Nature Communications, 3, 751. (https://doi.org/10.1038/ncomms1738)<br>
 +
                <br>Kukolka, F., & M. Niemeyer, C. (2004). Synthesis of fluorescent oligonucleotide –EYFP conjugate:
 +
                Towards supramolecular construction of semisynthetic biomolecular antennae. Organic & Biomolecular
 +
                Chemistry, 2(15), 2203–2206. (https://doi.org/10.1039/B406492E)<br>
 +
                <br>Lambert, T. (o. J.). PHluorin2 at FPbase. Abgerufen 21. Oktober 2019, von FPbase website:
 +
                https://www.fpbase.org/protein/phluorin2/ <br>
 +
                <br>Mahon, M. J. (2011). pHluorin2: An enhanced, ratiometric, pH-sensitive green florescent protein.
 +
                Advances in bioscience and biotechnology (Print), 2(3), 132–137.
 +
                (https://doi.org/10.4236/abb.2011.23021)<br>
 +
                <br>Lee, M. E., DeLoache, W. C., Cervantes, B., & Dueber, J. E. (2015). A Highly Characterized Yeast
 +
                Toolkit for Modular, Multipart Assembly. ACS Synthetic Biology, 4(9), 975–986.<br>
 +
                <br>Chen, J., Morita, T., & Gottesman, S. (2019). Regulation of Transcription Termination of Small RNAs
 +
                and by Small RNAs: Molecular Mechanisms and Biological Functions. Frontiers in Cellular and Infection
 +
                Microbiology, 9. (https://doi.org/10.3389/fcimb.2019.00201)<br><br>
 +
                de Hoon, M. J. L., Makita, Y., Nakai, K., & Miyano, S. (2005). Prediction of Transcriptional Terminators
 +
                in Bacillus subtilis and Related Species. PLoS Computational Biology, 1(3), e25.
 +
                (https://doi.org/10.1371/journal.pcbi.0010025)<br>
 +
                <br>Krebs, J., Lewin, B., Kilpatrick, S. & Goldstein, E. (2014). Lewin's genes XI. Burlington, Mass:
 +
                Jones & Bartlett Learning.<br>
 +
                <br>Gautheret D, Lambert A. (2001) Direct RNA Motif Definition and Identification from Multiple Sequence
 +
                Alignments using Secondary Structure Profiles. J Mol Biol. 313:1003–11 (abstract).<br>
 +
                <br>Macke T, Ecker D, Gutell R, Gautheret D, Case DA and Sampath R. (2001) RNAMotif – A new RNA
 +
                secondary structure definition and discovery algorithm. Nucleic Acids Res. 29:4724–4735 (abstract).<br>
 +
                <br>Kingsford, C. L., Ayanbule, K., & Salzberg, S. L. (2007). Rapid, accurate, computational discovery
 +
                of Rho-independent transcription terminators illuminates their relationship to DNA uptake. Genome
 +
                Biology, 8(2), R22. (https://doi.org/10.1186/gb-2007-8-2-r22)<br>
 +
                <br>V. Solovyev, A Salamov (2011) Automatic Annotation of Microbial Genomes and Metagenomic Sequences.
 +
                In Metagenomics and its Applications in Agriculture, Biomedicine and Environmental Studies (Ed. R.W.
 +
                Li), Nova Science Publishers, p. 61-78 <br>
 +
                <br>Chen, Y.-J., Liu, P., Nielsen, A. A. K., Brophy, J. A. N., Clancy, K., Peterson, T., & Voigt, C. A.
 +
                (2013). Characterization of 582 natural and synthetic terminators and quantification of their design
 +
                constraints. Nature Methods, 10(7), 659–664. (https://doi.org/10.1038/nmeth.2515)<br>
 +
                <br>Vijayan, V., Jain, I. H., & O’Shea, E. K. (2011). A high resolution map of a cyanobacterial
 +
                transcriptome. Genome Biology, 12(5), R47. (https://doi.org/10.1186/gb-2011-12-5-r47)<br>
 +
                 <br>Creecy, J. P., & Conway, T. (2015). Quantitative bacterial transcriptomics with RNA-seq. Current
 +
                Opinion in Microbiology, 23, 133–140. (https://doi.org/10.1016/j.mib.2014.11.011)<br>
 +
                <br>Sugimoto, N., Nakano, S. -i., Yoneyama, M., & Honda, K. -i. (1996). Improved Thermodynamic
 +
                Parameters and Helix Initiation Factor to Predict Stability of DNA Duplexes. Nucleic Acids Research,
 +
                24(22), 4501–4505. (https://doi.org/10.1093/nar/24.22.4501)<br>
 +
                <br>Russo, D. A., Zedler, J. A. Z., Wittmann, D. N., Möllers, B., Singh, R. K., Batth, T. S., ... &
 +
                Jensen, P. E. (2019). Expression and secretion of a lytic polysaccharide monooxygenase by a fast-growing
 +
                cyanobacterium. Biotechnology for biofuels, 12(1), 74. <br>
 +
                <br>Casteljau, P. (1963). Surfaces à pôles, INPI <br>
 +
                <br>Hoschek, J. & Lasser, D. (1993). Fundamentals of computer-aided geometric design. Wellesley, Mass:
 +
                A.K. Peters. <br>
 +
                <br>R., J., & de Boor, C. (1980). A Practical Guide to Splines. Mathematics of Computation, 34(149),
 +
                325. <br>
 +
                <br>Pedregosa, F., Varoquaux, G., Gramfort, A., Michel, V., Thirion, B., Grisel, O., ... & Vanderplas,
 +
                J. (2011). Scikit-learn: Machine learning in Python. Journal of machine learning research, 12(Oct),
 +
                2825-2830.
 +
<br><br>
 +
Yeh H.W., Karmach O., Ji A., Carter D., Martins-Green M.M., Ai H.W. (2017). Red-shifted luciferase-luciferin pairs for enhanced bioluminescence imaging, Nat Methods. 2017 Oct; 14(10): 971-974.
 +
              </p>
 
             </div>
 
             </div>
 +
          </div>
 
         </div>
 
         </div>
 
     </div>
 
     </div>
</body>
+
    </section>
 
+
  </div>
 
</html>
 
</html>
 
{{Marburg/footer}}
 
{{Marburg/footer}}

Latest revision as of 01:01, 14 December 2019

D E S C R I P T I O N


We proudly present our project SYNTEX. We are establishing the new chassis Synechocococcus elongatus UTEX 2973 for phototrophic Synthetic Biology.


S Y N E C H O C O C C U S
E L O N G A T U S


An extensive review on the history of our chassis, recent findings and its potential future.

S T R A I N
E N G I N E E R I N G


Here we show the results of our Strain Engineering project to tame our "wolf".

M A R B U R G
C O L L E C T I O N   2.0


We present to you the Marburg Collection 2.0, an extensive addition to the previosly established part collection that focuses around cyanobacteria.

P R O J E C T
I N S P I R A T I O N


The inspiration for our project.

R E F E R E N C E S


Here we list up our references.