Difference between revisions of "Team:Marburg/Design"

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normal part:
 
normal part:
 
</p>
 
</p>
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<div style="margin-top: 1m;">
<b>Building a homology/ connector part</b>
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<p>
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<b>Building a homology/ connector part</b>
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</p>
 
<ul>
 
<ul>
 
<li>
 
<li>
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</ul>
 
</ul>
 
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In a LVL 1 construct, the positions 2-5 representing a full transcription unit (promoter, RBS,
 
In a LVL 1 construct, the positions 2-5 representing a full transcription unit (promoter, RBS,
 
CDS, terminator) would be integrated into the genome, while positions 7-8 (origin of replication,
 
CDS, terminator) would be integrated into the genome, while positions 7-8 (origin of replication,
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integrated into the syntax last year:
 
integrated into the syntax last year:
 
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<figure style="text-align: center;">
<figure style="text-align:center">
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<img style="height: 1000px; width: 1000px;"
<img style="height: 1000px; width: 1000px;"
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src="https://static.igem.org/mediawiki/2019/8/8f/T--Marburg--Toolbox_verglStandardvsIntegration.svg"
src="https://static.igem.org/mediawiki/2019/8/8f/T--Marburg--Toolbox_verglStandardvsIntegration.svg" alt="Standard vs Integration">
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alt="Standard vs Integration">
<figcaption style="max-width: 2400px; text-align: center">
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<figcaption style="max-width: 2400px; text-align: center;">
Fig.8 - Standard vs Integration
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Fig.8 - Standard vs Integration
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</figcaption>
</figure><br>
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</figure>
 
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<p style="margin-top: 1em;">
<p>All terminators of the Marburg Collection were rebuild as "5a" parts similar to C-terminal tags. This allowed to
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All terminators of the Marburg Collection were rebuild as "5a" parts similar to C-terminal tags.
insert an antibiotic cassette at the position "5b". For this position 4 different antibiotic cassettes were designed.<br>
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This allowed to insert an antibiotic cassette at the position "5b". For this position 4 different
Our integration sites were also designed as connectors, so it is possible to build a gene cascade with up to 5
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antibiotic cassettes were designed.<br>
genes that can be inserted into a single neutral site. All integration sites function as 5'Con1 and 3'Con5 connectors,
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Our integration sites were also designed as connectors, so it is possible to build a gene cascade
meaning they are always at the beginning of the first and the end of the last gene in a LVL2 construct.<br>
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with up to 5 genes that can be inserted into a single neutral site. All integration sites function
 
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as 5'Con1 and 3'Con5 connectors, meaning they are always at the beginning of the first and the end
 
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of the last gene in a LVL2 construct.<br>
It is important to note for the user that when designing the vector for integration, the origin should not be compatible
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It is important to note for the user that when designing the vector for integration, the origin
with the organism. This way, it enters the organism and then integrates into the genome or disappears as it cannot be
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should not be compatible with the organism. This way, it enters the organism and then integrates
replicated in its new host. Otherwise the vector will be maintained in the transformed organism and it will be rather
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into the genome or disappears as it cannot be replicated in its new host. Otherwise the vector
complicated to remove it. If there is no compatible origin available. We designed our toolbox so that it can always be
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will be maintained in the transformed organism and it will be rather complicated to remove it. If
digested with NotI to linearize the integration cassette and extracted it over a gel. In a lot of cases transformations
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there is no compatible origin available. We designed our toolbox so that it can always be
and homologous recombinations with linear DNA are a lot more efficient. (See results of strain engineering)<br>
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digested with NotI to linearize the integration cassette and extracted it over a gel. In a lot of
 
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cases transformations and homologous recombinations with linear DNA are a lot more efficient. (See
Our system offers the integration of up to 5 genes with 4 different selection markers at 5 different integration sites.
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results of strain engineering)<br>
Therefore, the integration of up to 20 genes into the UTEX wild type genome is possible.
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Our system offers the integration of up to 5 genes with 4 different selection markers at 5
<br>
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different integration sites. Therefore, the integration of up to 20 genes into the UTEX wild type
</p>
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genome is possible.
</div>
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</p>
</div>
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</div>
</div>
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</div>
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</div>
  
  

Revision as of 18:50, 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.