Difference between revisions of "Team:Marburg/Description"

 
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               <h1 class="title">Synechococcus elongatus</h1>
 
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               <section class="section">
 
                 <p>
 
                 <p>
                  <b> Synechococcus elongatus</i> UTEX 2973: A review </b> <br>
 
 
                   <u>Introduction</u>
 
                   <u>Introduction</u>
 
                   <br>
 
                   <br>
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                   Synthetic Biology. The forefather of photosynthesis is interesting because of its simplicity, making
 
                   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.
 
                   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
+
                   In recent years phototrophs became the notorious revolutionizers of “Green Biotechnology”: as
                   photoautotrophic organisms, they only require CO<sub>2</sub> and sunlight as carbon and energy sources
+
                   photoautotrophic organisms only require CO<sub>2</sub> and sunlight as carbon and energy source
 
                   to
 
                   to
 
                   generate biomass.<br>
 
                   generate biomass.<br>
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                   <br>
 
                   <br>
  
                   <b>The organism</b>
+
                   <u>The organism</u>
 
                   <br>
 
                   <br>
 
                   The gram-negative photoautotrophic cyanobacterial strain <i>Synechococcus elongatus</i> UTEX 2973 is
 
                   The gram-negative photoautotrophic cyanobacterial strain <i>Synechococcus elongatus</i> UTEX 2973 is
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                   strain, resulting in <i>Synechococcus elongatus</i> UTEX 2973. The resulting organism is genetically
 
                   strain, resulting in <i>Synechococcus elongatus</i> UTEX 2973. The resulting organism is genetically
 
                   very
 
                   very
                   close to the well studied strain <i>Synechococcus elongatus</i> PCC 7942. With the fastest measured
+
                   closely related to the well studied strain <i>Synechococcus elongatus</i> PCC 7942. With the fastest measured
 
                   doubling time of below 90 minutes and a high tolerance to temperature and light intensity, UTEX 2973
 
                   doubling time of below 90 minutes and a high tolerance to temperature and light intensity, UTEX 2973
 
                   is a chassis to keep an eye on.
 
                   is a chassis to keep an eye on.
 
                   Cyanobacteria have big advantages compared to other phototrophic organisms such as plants or
 
                   Cyanobacteria have big advantages compared to other phototrophic organisms such as plants or
                   eukaryotic algae: next to their faster growth they also convert solar energy a lot more efficiently.
+
                   eukaryotic algae: Next to their faster growth they also convert solar energy a lot more efficiently.
 
                   The faster generation of biomass makes cyanobacteria a potential candidate for biotechnological
 
                   The faster generation of biomass makes cyanobacteria a potential candidate for biotechnological
 
                   application and their amenability to genetic modifications <a
 
                   application and their amenability to genetic modifications <a
                     href="https://www.ncbi.nlm.nih.gov/pubmed/30409802">
+
                     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.
 
                     (Ungerer, Wendt, Hendry, Maranas & Pakrasi, 2018) </a> make them a great platform for research.
 
                   Despite these advantages, cyanobacteria have
 
                   Despite these advantages, cyanobacteria have
                   still not arrived in Synthetic Biology quite as we want. With our highly optimized chassis
+
                   still not arrived in Synthetic Biology quite as expected. With our highly optimized chassis
                   <i> Synechococcus e. </i> UTEX 2973 we want to change just that.
+
                   <i> Synechococcus elongatus</i> UTEX 2973 we want to change just that.
 
                   <br>
 
                   <br>
 +
<br>
 
                   <div class="wrap-collabsible">
 
                   <div class="wrap-collabsible">
 
                     <input id="UTEX text"
 
                     <input id="UTEX text"
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                           carboxysomes and polyphosphate bodies were found in both strains. Most conspicuous
 
                           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
 
                           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 stored in the form of
+
                           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
 
                           glycogen. UTEX 2973 does not generate glycogen storage and uses the carbon directly
 
                           for biomass production, resulting in faster growth.<br>
 
                           for biomass production, resulting in faster growth.<br>
 
                           Research has also proven that several changes in the photosynthetic apparatus cause
 
                           Research has also proven that several changes in the photosynthetic apparatus cause
                           decreased phycobilisomes but enhancement of Photosystem I, cytochrome f and
+
                           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">
+
                           plastocyanin contents <a href="https://www.pnas.org/content/115/50/E11761.short?rss=1" target="_blank">
                             (Ungerer et al., 2018) </a> .<br>
+
                             (Ungerer <i>et al.</i>, 2018) </a> .<br>
                           The most notable advantage is UTEX’ unparalleled doubling time. PCC 7942 takes more
+
                           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
 
                           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
 
                           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
 
                           0.87 mg/ml, compared to only 0.33 mg/ml in PCC 7942 <a
                             href="https://www.nature.com/articles/srep08132"> (Yu et al., 2015) </a>. Unlike UTEX
+
                             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
 
                           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
+
                           are encoded on the inverted region in the genome so that the inversion in UTEX 2973 can
 
                           be reversed.<br>
 
                           be reversed.<br>
 
                           <br>
 
                           <br>
                           <b> But what allows UTEX 2973 to have such vital advantages? </b><br>
+
                           <u> But what allows UTEX 2973 to have such vital advantages? </u><br>
                          <br>
+
 
                           When comparing both strains, one can observe that their content of amino acids
 
                           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
 
                           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"> (Mueller, Ungerer,
+
                           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
 
                             Pakrasi & Maranas, 2017) </a>. This results in a
 
                           different composition of the biomass, which is due to the discovered single
 
                           different composition of the biomass, which is due to the discovered single
                           nucleotide polymorphisms (SNP’s). Among other things, they cause an increased
+
                           nucleotide polymorphisms (SNP’s). Amongst other things, they cause an increased
                           translation rate through a more efficient RNA polymerase. In addition, UTEX 2973
+
                           translation rate through a more efficient RNA polymerase.
                          increases.<br>
+
 
                         </p>
 
                         </p>
 
                       </div>
 
                       </div>
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                   <p>
 
                   <p>
 
                     <br>
 
                     <br>
                     <b>Molecular aspect</b>
+
                     <u>Molecular aspect</u>
 
                     <br>
 
                     <br>
 
                     UTEX 2973 differs from PCC 7942 in 55 single nucleotide polymorphisms and insertion-deletions,
 
                     UTEX 2973 differs from PCC 7942 in 55 single nucleotide polymorphisms and insertion-deletions,
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                     <br>
 
                     <br>
  
                     <b>Field of application</b>
+
                     <u>Field of application</u>
 
                     <br>
 
                     <br>
 
                     <i>Synechococcus elongatus </i> UTEX 2973 has the potential to change paradigms in Synthetic
 
                     <i>Synechococcus elongatus </i> UTEX 2973 has the potential to change paradigms in Synthetic
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                       <br>
 
                       <br>
  
                       <b>Genetic amenability</b>
+
                       <u>Genetic amenability</u>
 
                       <br>
 
                       <br>
 
                       In recent years, the CRISPR system has enabled precise gene editing. Gene editing is well
 
                       In recent years, the CRISPR system has enabled precise gene editing. Gene editing is well
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               style="text-align: justify;">
 
               style="text-align: justify;">
 
               <p>
 
               <p>
                 <b>Natural Competence</b></p>
+
                 <u>Natural Competence</u></p>
 
               <p>One of the most important aspects when engineering an organism is the actual modification of its
 
               <p>One of the most important aspects when engineering an organism is the actual modification of its
 
                 genetic code.
 
                 genetic code.
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                 <br>
 
                 <br>
 +
<p>
 
                 In order to take up extracellular DNA several steps seem to be necessary: The double stranded DNA has to
 
                 In order to take up extracellular DNA several steps seem to be necessary: The double stranded DNA has to
 
                 be picked up
 
                 be picked up
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                 and how we planned all of it through can be found in our <a
 
                 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>
 
                   href="https://2019.igem.org/Team:Marburg/Design">design</a> section. </p><br>
               <p><b>CRISPR gene editing</b></p>
+
               <p><u>CRISPR gene editing</u></p>
 
               <p>Clustered regularly interspaced short palindromic repeats / CRISPR associated protein (CRISPR/Cas)
 
               <p>Clustered regularly interspaced short palindromic repeats / CRISPR associated protein (CRISPR/Cas)
 
                 systems are adaptive
 
                 systems are adaptive
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                 with a wide application range - including multiplexed alterations.</p><br>
 
                 with a wide application range - including multiplexed alterations.</p><br>
  
               <p><b>Cyanobacterial shuttle vectors</b></p>
+
               <p><u>Cyanobacterial shuttle vectors</u></p>
 
               <p>Cyanobacteria are known to contain multiple copy numbers of their chromosome, the unicellular
 
               <p>Cyanobacteria are known to contain multiple copy numbers of their chromosome, the unicellular
 
                 cyanobacteria
 
                 cyanobacteria
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               style="text-align: justify;">
 
               style="text-align: justify;">
 
               <p>
 
               <p>
                 <b>Golden Gate Cloning and Modular Cloning: A historical review</b>
+
                 <u>Golden Gate Cloning and Modular Cloning: A historical review</u>
 
               </p>
 
               </p>
 
               <p>Golden Gate assembly is a novel cloning method. It is at the heart of
 
               <p>Golden Gate assembly is a novel cloning method. It is at the heart of
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                   alt="design build test cycle">
 
                   alt="design build test cycle">
 
                 <figcaption style="max-width: 2400px; text-align: center">
 
                 <figcaption style="max-width: 2400px; text-align: center">
                   <b>Fig.1</b>: Type II vs. Type IIS.
+
                   Fig.1: Type II vs. Type IIS.
 
                 </figcaption>
 
                 </figcaption>
 
               </figure>
 
               </figure>
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               <br>
 
               <br>
 
               <p>
 
               <p>
                 <b>Modular Cloning (MoClo) by <a
+
                 <u>Modular Cloning (MoClo) by <a
 
                     href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0016765 ">Weber <i>et
 
                     href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0016765 ">Weber <i>et
                       al.</i> (2011)</a></b>
+
                       al.</i> (2011)</a></u>
 
               </p>
 
               </p>
 
               <p>The modular cloning system was the first proposing a standard for Golden
 
               <p>The modular cloning system was the first proposing a standard for Golden
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               <br>
 
               <br>
 
               <p>
 
               <p>
                 <b>The PhytoBrick standard: The Syntax of Syntex</b>
+
                 <u>The PhytoBrick standard: The Syntax of Syntex</u>
 
               </p>
 
               </p>
 
               <p>Another significant milestone is the PhytoBrick <a
 
               <p>Another significant milestone is the PhytoBrick <a
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               <br>
 
               <br>
 
               <p>
 
               <p>
                 <b> Marburg Collection 2.0: The green expansion</b>
+
                 <u> Marburg Collection 2.0: The green expansion</u>
 
               </p>
 
               </p>
 
               <p> We expanded on the Marburg Collection, a toolbox established by iGEM
 
               <p> We expanded on the Marburg Collection, a toolbox established by iGEM
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               <br>
 
               <br>
 
               <p>
 
               <p>
                 <b>Enabling high throughput assembly with flexible placeholder parts</b>
+
                 <u>Enabling high throughput assembly with flexible placeholder parts</u>
 
               </p>
 
               </p>
 
               <p>Some applications require the construction of an array of higher LVL
 
               <p>Some applications require the construction of an array of higher LVL
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               <p>
 
               <p>
                 <b>A small part in our Collection, a big application for the future</b>
+
                 <u>A small part in our Collection, a big application for the future</u>
 
               </p>
 
               </p>
  
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               <br><br>
 
               <br><br>
 
               <p>
 
               <p>
                 <b>Characterizing parts for our new chassis</b>
+
                 <u>Characterizing parts for our new chassis</u>
 
               </p>
 
               </p>
 
               <p> To make sure that scientists are able to use our toolbox as convenient
 
               <p> To make sure that scientists are able to use our toolbox as convenient
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               <br>
 
               <br>
 
               <p>
 
               <p>
                 <b>Modular Engineering of Genome Areas (M.E.G.A.)</b>
+
                 <u>Modular Engineering of Genome Areas (M.E.G.A.)</u>
 
               </p>
 
               </p>
  
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               <br>
 
               <br>
 
               <p>
 
               <p>
                 <b> Presenting a broad range arsenal of reporters for the green expansion </b>
+
                 <u> Presenting a broad range arsenal of reporters for the green expansion </u>
 
               </p>
 
               </p>
 
               <p>Reporters are an essential basic tool of Synthetic Biology. We present a
 
               <p>Reporters are an essential basic tool of Synthetic Biology. We present a
Line 1,154: Line 1,153:
 
                 J. (2011). Scikit-learn: Machine learning in Python. Journal of machine learning research, 12(Oct),
 
                 J. (2011). Scikit-learn: Machine learning in Python. Journal of machine learning research, 12(Oct),
 
                 2825-2830.
 
                 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>
 
               </p>
 
             </div>
 
             </div>

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.