Difference between revisions of "Team:Marburg/Design"

Line 937: Line 937:
 
cellular context and acts as a truly orthogonal reporter.
 
cellular context and acts as a truly orthogonal reporter.
 
</p>
 
</p>
 
+
<p style="margin-top: 1em;">
 
+
<b>TeLuc</b>
<p style="margin-top: 1em;"><b>TeLuc</b></p>
+
</p>
<p>TeLuc is a triple mutant of NanoLuc. Thanks to a modified substrate binding pocket it is able to use DTZ as a substrate,
+
<p>
resulting in a (42 nm) red-shift (from 460 nm to 502 nm peak) of emission.
+
TeLuc is a triple mutant of NanoLuc. Thanks to a modified substrate binding pocket it is able to
This bypasses the absorption of Chlorophyll A, making it the more suitable reporter for phototrophic organism.</p><br>
+
use DTZ as a substrate, resulting in a (42 nm) red-shift (from 460 nm to 502 nm peak) of
 
+
emission. This bypasses the absorption of Chlorophyll A, making it the more suitable reporter for
 
+
phototrophic organism.
<p style="margin-top: 1em;"><b>Antares2</b></p>
+
</p>
<p>Antares2 is a coupled bioluminescence protein consisting of TeLuc and two flanking CyOFP fluorescence reporters. It
+
<p style="margin-top: 1em;">
abuses the Bioluminescence Resonance Energy Transfer (BRET) to excite CyOFP with the luminescence of TeLuc. This results
+
<b>Antares2</b>
in a further red-shift, making it suitable for applications like deep tissue analysis. Additionally, it can be used in
+
</p>
conjunction with NanoLuc thanks to the utilization of two distinct substrates as well as varying emission peaks. Therefore
+
<p>
it is the world’s only dual luminescent detector pair.<br>Luminescence is a great tool for accurate measurements, but in
+
Antares2 is a coupled bioluminescence protein consisting of TeLuc and two flanking CyOFP
the world of biosensors for the detection of cellular conditions only fluorescent reporters are established yet. We present
+
fluorescence reporters. It abuses the Bioluminescence Resonance Energy Transfer (BRET) to excite
reporters for the two most important chemical parameters in cyanobacteria: pH and redox status. We saw that the pH of the
+
CyOFP with the luminescence of TeLuc. This results in a further red-shift, making it suitable for
media has a significant impact on the growth of the culture (Link to results growth rate), which is previously described
+
applications like deep tissue analysis. Additionally, it can be used in conjunction with NanoLuc
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC216614/">(Kallas, Castenholz et al.)</a>. Cyanobacteria are not
+
thanks to the utilization of two distinct substrates as well as varying emission peaks. Therefore
equipped to regulate their internal pH very well, yet they still depend on a stable proton gradient to keep up their
+
it is the world’s only dual luminescent detector pair.<br>Luminescence is a great tool for
photosynthetic machinery <a href="https://jb.asm.org/content/190/19/6318">(Billini et al.)</a>. We present phlurion2, a
+
accurate measurements, but in the world of biosensors for the detection of cellular conditions
reporter that is modulated in its excitation peak by varying ph values.
+
only fluorescent reporters are established yet. We present reporters for the two most important
</p><br>
+
chemical parameters in cyanobacteria: pH and redox status. We saw that the pH of the media has a
 
+
significant impact on the growth of the culture (Link to results growth rate), which is previously
<p><b>pHlurion2 (S.e.)</b></p>
+
described <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC216614/">(Kallas, Castenholz et
<p>Info Box:<br>
+
al.)</a>. Cyanobacteria are not equipped to regulate their internal pH very well, yet they still
<table>
+
depend on a stable proton gradient to keep up their photosynthetic machinery
<tr>
+
<a href="https://jb.asm.org/content/190/19/6318">(Billini et al.)</a>. We present phlurion2, a
<td><i>Aequorea victoria</i></td>
+
reporter that is modulated in its excitation peak by varying ph values.
<td>acidic (pH 5,5)</td>
+
</p>
<td>alkaline (pH 7,5)</td>
+
<div style="margin-top: 1em;">
</tr>
+
<p>
<tr>
+
<b>pHlurion2 (S.e.)</b>
<td>Excitation Maximum (nm)</td>
+
</p>
<td>395</td>
+
<table>
<td>475</td>
+
<tr>
</tr>
+
<td><i>Aequorea victoria</i></td>
<tr>
+
<td>acidic (pH 5,5)</td>
<td>Emission Maximum (nm)</td>
+
<td>alkaline (pH 7,5)</td>
<td>509</td>
+
</tr>
<td>509</td>
+
<tr>
</tr>
+
<td>Excitation Maximum (nm)</td>
</table>
+
<td>395</td>
 
+
<td>475</td>
</p><br>
+
</tr>
<p>Source: FP Base (pHlurion2)</p><br>
+
<tr>
<p>pHlurion2 is a mutant of GFP2. Its excitation maximum depends on the surrounding pH value. Therefore it can be used
+
<td>Emission Maximum (nm)</td>
to detect changes in the cellular pH. As described above a biosensor for this parameter could be of great use, especially
+
<td>509</td>
in cyanobacteria. <a href="">(Mahon, 2011)</a><br>
+
<td>509</td>
Another important cellular factor is the internal redox status. During photosynthesis reactive oxygen species (ROS)
+
</tr>
are constantly produced as a byproduct. A critical mass of reactive oxygen species leads to serious cell damage and
+
</table>
cell toxicity through chemical alterations of proteins, DNA and lipids. Especially under high light conditions the redox
+
<i>Source: FP Base (pHlurion2)</i>
status becomes a crucial parameter as it can threaten the cellular fitness. <br>
+
<p style="margin-top: 1em;">
For example, the overexpression of orthogonal thioredoxin peroxidase leads to the degradation of ROS resulting in enhanced
+
pHlurion2 is a mutant of GFP2. Its excitation maximum depends on the surrounding pH value.
growth of PCC7942, <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6297720/">(Kim et al.)</a>
+
Therefore it can be used to detect changes in the cellular pH. As described above a biosensor
We present rxYFP, a redox-sensitive reporter for cyanobacteria.</p><br>
+
for this parameter could be of great use, especially in cyanobacteria.
 
+
<a href="">(Mahon, 2011)</a><br>
 +
Another important cellular factor is the internal redox status. During photosynthesis reactive
 +
oxygen species (ROS) are constantly produced as a byproduct. A critical mass of reactive oxygen
 +
species leads to serious cell damage and cell toxicity through chemical alterations of proteins,
 +
DNA and lipids. Especially under high light conditions the redox status becomes a crucial
 +
parameter as it can threaten the cellular fitness.<br>
 +
For example, the overexpression of orthogonal thioredoxin peroxidase leads to the degradation
 +
of ROS resulting in enhanced growth of PCC7942,
 +
<a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6297720/">(Kim et al.)</a> We present
 +
rxYFP, a redox-sensitive reporter for cyanobacteria.
 +
</p>
 +
</div>
 
<p><b>rxYFP (S.e.)</b></p>
 
<p><b>rxYFP (S.e.)</b></p>
 
<p>
 
<p>

Revision as of 19:14, 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.