Difference between revisions of "Team:Marburg/Design"

Line 759: Line 759:
 
sensing of a variety of parameters which are crucial for cyanobacteria.
 
sensing of a variety of parameters which are crucial for cyanobacteria.
 
</p>
 
</p>
 
+
<div style="margin-top: 1em;">
<p><b>eYFP</b></p>
+
<p>
<p>
+
<b>eYFP</b>
<table>
+
</p>
<tr>
+
<table>
<td><i>Aequorea victoria</i></td>
+
<tr>
<td></td>
+
<td><i>Aequorea victoria</i></td>
</tr>
+
<td></td>
<tr>
+
</tr>
<td>Excitation Maximum (nm)</td>
+
<tr>
<td>515</td>
+
<td>Excitation Maximum (nm)</td>
</tr>
+
<td>515</td>
<tr>
+
</tr>
<td>Emission Maximum (nm)</td>
+
<tr>
<td>527</td>
+
<td>Emission Maximum (nm)</td>
</tr>
+
<td>527</td>
<tr>
+
</tr>
<td>Extinction Coefficient (M<sup>-1</sup> cm<sup>-1</sup>)</td>
+
<tr>
<td>67,000</td>
+
<td>Extinction Coefficient (M<sup>-1</sup> cm<sup>-1</sup>)</td>
</tr>
+
<td>67,000</td>
<tr>
+
</tr>
<td>Quantum Yield</td>
+
<tr>
<td>0.67</td>
+
<td>Quantum Yield</td>
</tr>
+
<td>0.67</td>
<tr>
+
</tr>
<td>Brightness</td>
+
<tr>
<td>44.89</td>
+
<td>Brightness</td>
</tr>
+
<td>44.89</td>
<tr>
+
</tr>
<td>pKa</td>
+
<tr>
<td>6.9</td>
+
<td>pKa</td>
</tr>
+
<td>6.9</td>
<tr>
+
</tr>
<td>Maturation (min)</td>
+
<tr>
<td>9.0</td>
+
<td>Maturation (min)</td>
</tr>
+
<td>9.0</td>
<tr>
+
</tr>
<td>Life-
+
<tr>
span (ns)</td>
+
<td>Life-
<td>3.1</td>
+
span (ns)</td>
</tr>
+
<td>3.1</td>
</table>
+
</tr>
<br>
+
</table>
 
+
<i>Source: FP Base (EYFP)</i>
Source: FP Base (EYFP)
+
<p>
</p>
+
eYFP is the mutant of green fluorescent protein naturally occuring in Aequorea victoria. It is a
<p>eYFP is the mutant of green fluorescent protein naturally occuring in Aequorea victoria. It is a preferred reporter
+
preferred reporter for cyanobacteria as it bypasses the wavelength at which absorption
for cyanobacteria as it bypasses the wavelength at which absorption photoactive pigments occurs, resulting in stronger
+
photoactive pigments occurs, resulting in stronger signal overall
signal overall <a href="https://pubs.rsc.org/en/content/articlelanding/2004/ob/b406492e#!divAbstract">(Kukolka & M. Niemeyer, 2004)</a>.
+
<a href="https://pubs.rsc.org/en/content/articlelanding/2004/ob/b406492e#!divAbstract">(Kukolka
</p>
+
& M. Niemeyer, 2004)</a>.
 
+
</p>
<figure style="text-align:center">
+
<figure style="text-align: center;">
<img style="height: 1000px; width: 1000px;"
+
<img src="https://static.igem.org/mediawiki/2019/b/b6/T--Marburg--Reporter--UTEX-Spectra.png"
src="https://static.igem.org/mediawiki/2019/b/b6/T--Marburg--Reporter--UTEX-Spectra.png" alt="Graph">
+
alt="Graph">
<figcaption style="max-width: 2400px; text-align: center">
+
<figcaption style="max-width: 2400px; text-align: center;">
Fig. 8 - Excitation and Emission wavelength of the different Reporters mapped to the Absoptionspectra of Synechococcus elongatus UTEX 2973.
+
Fig. 8 - Excitation and Emission wavelength of the different Reporters mapped to the
</figcaption>
+
Absoptionspectra of Synechococcus elongatus UTEX 2973.
</figure><br>
+
</figcaption>
 
+
</figure>
 
+
</div>
 
+
<p style="margin-top: 1em;">
<p>Additionally, autofluorescence of cyanobacterial cells is rather low at that point, resulting in a stronger signal
+
Additionally, autofluorescence of cyanobacterial cells is rather low at that point, resulting in a
compared to the background, increasing the resolution of characterizations.</p><br>
+
stronger signal compared to the background, increasing the resolution of characterizations.
 +
</p>
  
  

Revision as of 19:02, 18 November 2019

D E S I G N


"Always plan ahead. It wasn’t raining when Noah build the ark."
- Richard Cushing

What does expanding the golden gate based Marburg Collection, automating time consuming lab work and establishing the CRISPR/Cpf1 system in Synechococcus elongatus UTEX 2973 have in common?
To achieve these objectives, it is always necessary to have a comprehensive theoretical preparation. It all starts with literature research, summarizing the current state of the art and based on this developing own ideas. To have the theoretical background settled before the lab work starts is a key point of every project and consumes many hours.
Because in the near future phototrophic organisms will get more and more relevance for biotechnological applications, we want to establish the use of Synechococcus elongatus as a phototrophic organism for synthetic biology. Following the principles of synthetic biology to simplify the process of engineering of biological systems, we set it our goal to establish Synechococcus elongatus UTEX 2973 as the fastest and most accessible phototrophic chassis to date, providing it as a wind tunnel for phototrophic organisms with user friendly and standardized workflows.
In order to achieve these goals, a lot of effort has been put into designing, building, testing, evaluating and learning. Further, these steps had to be iterated over and over again to elaborate our standardized designs. By providing you our theoretical background we want to give you an insight in our decision-making.


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


We modified Synechococcus elongatus UTEX 2973 to establish the CRISPR/Cpf1 system in our organism.

T O O L B O X


We expanded last years Marburg Collection and made the parts suitable for Synechococcus elongatus UTEX 2973.