Difference between revisions of "Team:Marburg/test"

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Metabolic engineering
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One mayor criteria to evaluate a chassis is its potential for an application project. To showcase these potential applications, our team decided to redirect the metabolic flux of Synechococcus elongatus UTEX 2973 in order to synthesis add-value compounds with C02 and light as a resource. As a target, we thought about a molecules, which also tackle one of the most important topic: the climate change.  
 
One mayor criteria to evaluate a chassis is its potential for an application project. To showcase these potential applications, our team decided to redirect the metabolic flux of Synechococcus elongatus UTEX 2973 in order to synthesis add-value compounds with C02 and light as a resource. As a target, we thought about a molecules, which also tackle one of the most important topic: the climate change.  
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<figure style="float:right; margin-left: 25px;">
 
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             <img style="height: 500px; width: 750px;"
 
             <img style="height: 500px; width: 750px;"
               src=" https://2019.igem.org/File:T--Marburg--Metabolic--MEP-pathway.png"
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               src="https://2019.igem.org/File:T--Marburg--Metabolic--MEP-pathway.png"
 
               alt="Metabolic MEP Pathway">
 
               alt="Metabolic MEP Pathway">
 
             <figcaption style="max-width: 550px; text-align: center">
 
             <figcaption style="max-width: 550px; text-align: center">
               Fig. 1- Overview of the MEP-Pathway. Enzymes are marked blue and Green. Limonene and farnesene Synthase are summarised as TPS. Modified after Lin et al 2016
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               Fig. 1- Overvie of the MEP-Pathway. Enzymes are marked blue and Green. Limonene and Farnesen Synthase are summirsaed as TPS. Modified after Lin et al 2016
 
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Overview of the MEP-Pathway. Enzymes are marked blue and Green. Limonene and farnesene Synthase are summarised as TPS. Modified after Lin et al 2016
 
<p>
 
<p>
 
Farnesene and limonene are both Terpenoids, deriving from the so called 2-C-methyl-D-erythritol 4-phosphate (MEP) pathway (figure 3).  
 
Farnesene and limonene are both Terpenoids, deriving from the so called 2-C-methyl-D-erythritol 4-phosphate (MEP) pathway (figure 3).  
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Removal of End product is a key component in overproduction strains. Because farnesene and limonene are volatile, the extra cellular diffusion rate is enough to prevent intracellular and poteinal toxic accumulation. On the other hand a nontoxic Overlay to catch the molecules is required, for example dodecan (<a style="padding: 0" href=" https://pubs.acs.org/doi/10.1021/acs.jafc.7b03625" target="_blank">Lee et al. 2017</a>). An alternative supply with CO2 is also required, therefore we copied the system from Lee et al and introduced a small tube with holes into the Medium.
 
Removal of End product is a key component in overproduction strains. Because farnesene and limonene are volatile, the extra cellular diffusion rate is enough to prevent intracellular and poteinal toxic accumulation. On the other hand a nontoxic Overlay to catch the molecules is required, for example dodecan (<a style="padding: 0" href=" https://pubs.acs.org/doi/10.1021/acs.jafc.7b03625" target="_blank">Lee et al. 2017</a>). An alternative supply with CO2 is also required, therefore we copied the system from Lee et al and introduced a small tube with holes into the Medium.
 
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To balance the pathway we decided to use a weak promotor (<a style="padding: 0" href="http://parts.igem.org/Part:BBa_J23103" target="_blank">BBa_J23103</a>) for the ispA, as competition over FPP could lead to a heavy growth impact (<a style="padding: 0" href=" https://link.springer.com/article/10.1007/s00425-018-3047-y" target="_blank">Lin et al. 2016</a>).
 
To balance the pathway we decided to use a weak promotor (<a style="padding: 0" href="http://parts.igem.org/Part:BBa_J23103" target="_blank">BBa_J23103</a>) for the ispA, as competition over FPP could lead to a heavy growth impact (<a style="padding: 0" href=" https://link.springer.com/article/10.1007/s00425-018-3047-y" target="_blank">Lin et al. 2016</a>).
As IDI is an Isomerase, only a comparable small amount of Protein should be sufficient for enhanced effect, so Promotr <a style="padding: 0" href="http://parts.igem.org/Part:BBa_J23110" target="_blank">BBa_J23110</a>. Because the DXS is the a potential bottle neck in Terpene Production, we chose the Promotor <a style="padding: 0" href="http://parts.igem.org/Part:BBa_J23111" target="_blank">BBa_J23111</a>.  
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As IDI is an Isomerase, only a comparable small amount of Protein should be sufficient for enhanced effect, so Promotor <a style="padding: 0" href="http://parts.igem.org/Part:BBa_J23110" target="_blank">BBa_J23110</a>. Because the DXS is the a potential bottle neck in Terpene Production, we chose the Promotor <a style="padding: 0" href="http://parts.igem.org/Part:BBa_J23111" target="_blank">BBa_J23111</a>.  
 
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Sadly, we weren´t able to test our constructs in vivo and dropped this side project due to time reasons. As of now the submitted Parts for the limonene and the Farnesene synthase codon optimised for Synechococcus have been added to the registry.
 
Sadly, we weren´t able to test our constructs in vivo and dropped this side project due to time reasons. As of now the submitted Parts for the limonene and the Farnesene synthase codon optimised for Synechococcus have been added to the registry.
  
 
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Revision as of 18:21, 8 December 2019

M E A S U R E M E N T


Amplifying new standards in measurement

Vielleicht noch ein allgemeinem abstract zu Messung (vergleiche andere WIKIS)

Storytelling:

We entered this project as the first Marburg iGEM team working with Synechococcus elongatus UTEX 2973, the fastest phototrophic organism. Missing knowledge in handling and cultivation of UTEX 2973 left us in front of many problems and questions. Especially the usage of different media, light conditions and other cultivating and measurement parameters were one of the biggest problems we discovered in scientific papers. Many of these problems are reasoned in the ongoing optimization and development of methods and instruments. Therefore it is hard to hold on to special methods but still standardization is a huge part in synthetic microbiology and necessary to compare results with other scientists and reproduce their data.

While we wanted to establish Syn. elong. as a new chassis for the iGEM community and scientists we wanted to show the best conditions for cultivation and the best measuring method for our parts in UTEX 2973. Therefore we analyzed a big variety of cultivating conditions in measuring growth curves, tried to find a standard in light measurement, evaluated different reporters???, established a measurement method and compared it to a already known FACS measurement method (?).

At the beginning of our project we faced the first question on how to cultivate UTEX at 1500 μE. [quelle]. So we had to measure the light conditions in our incubators and while doing this simple task the first part of standardization began. We discovered that nearly every paper? is using different methods to measure their light conditions and that it is a really complex and important procedure. So we got in contact with cyano and light measurement experts [link IHP] to confront this problem and standardize it. In the following popup we show different ways of measurement, their (dis-)advantages and different results depending on the measuring instrument.
Not only the light intensity but also a variety of other cultivating parameters needed to be analyzed. In literature and while talking with different experts (IHP), we recognized that small deviations of these parameters had a huge impact on the growth speed of Synechococcus elongatus. While establishing UTEX 2973 as a new chassis we evaluated this impact on the growth speed and were able to show combinations of parameters that lead to the fastest growth speed.
Another aspect was measuring the expression and characterize our part. Different possibilities were discussed and after testing them we decided on two methods in our project (plate reader and FACs). One approach was to measure the fluorescence/luminescence with a plate reader [link part measurement]. Plate readers belong to standard equipment of every lab nowadays, and could deliver easy reproducible results.
The second way was to measure the fluorescence by FACS (Fluorescence-Activated Cell Sorting) [link facs]. In contrast to a platerader a FACs device delivers results with high accuracy by measuring every cell by its own(vielleicht erst spaeter FACS genau erklaeren aber nicht im abtract?). On the other side not every laboratory posses a FACs/device. So in the end we would like to offer a two method analyzed database from our crontructs for iGEM teams and research groups, who do not have access to a FACS and show the difference in measurement methods.
At the end of the project we were able to create a protocol how to handle Synechococcus elongatus UTEX 2973 and make a contribution to the cyano community by establishing essential/fixed standards in measurement.


L I G H T
M E A S U R E M E N T


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R E P O R T E R S


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F A C S


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P A R T
M E A S U R E M E N T


For our project it was indispensable to establish a measurement workflow that is not only applicable to UTEX 2973 and other cyanobacteria but also has a high throughput.

G R O W T H
C U R V E S


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