Difference between revisions of "Team:Marburg/Description"

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                     of understanding genetic components as devices and soon they started  
 
                     of understanding genetic components as devices and soon they started  
 
                     standardizing overhangs for sequences like promoter, ribosomal binding  
 
                     standardizing overhangs for sequences like promoter, ribosomal binding  
                     sites and other part “types” <a href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0016765 ">(Weber <i>et al.</i>, 2011)</a> . In this way, parts of
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                     sites and other part “types” <a href="https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0016765 ">(Weber <i>et al.</i>, 2011)</a>. In this way, parts of
 
                     different genes could be fused together effortlessly. It essentially  
 
                     different genes could be fused together effortlessly. It essentially  
 
                     allowed the cross compatibility of any genetic device in any organism,  
 
                     allowed the cross compatibility of any genetic device in any organism,  
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                     <h3 class="title"> Marburg Collection 2.0: The green expansion</h3>
 
                     <h3 class="title"> Marburg Collection 2.0: The green expansion</h3>
 
                      
 
                      
                     We expand on the Marburg Collection, a toolbox established by iGEM  
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                     We expanded on the Marburg Collection, a toolbox established by iGEM  
 
                     Marburg in 2018. Thanks to its broad host range design inspired by the  
 
                     Marburg in 2018. Thanks to its broad host range design inspired by the  
                     “Dueber toolbox” from Leet et al 2015 we were able to apply it to our  
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                     “Dueber toolbox” from <a href="https://www.ncbi.nlm.nih.gov/pubmed/25871405 ">Lee <i>et al.</i>
                     new chassis Synechococcus elongatus UTEX2973. The design is extremely  
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                    2015</a> we were able to apply it to our  
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                     new chassis <i>Synechococcus elongatus</i> UTEX2973. The design is extremely  
 
                     simple: LVL 0 parts are the basic foundation, they contain one promoter,
 
                     simple: LVL 0 parts are the basic foundation, they contain one promoter,
                     ribosomal binding site or terminator etc. Up to 8 LVL 0 parts are used  
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                     ribosomal binding site or terminator etc. Up to eight LVL 0 parts are used  
 
                     to create a LVL1 plasmid with a single transcription unit. The Marburg  
 
                     to create a LVL1 plasmid with a single transcription unit. The Marburg  
 
                     Collection 2.0 presents a set of new parts adding several new functions,
 
                     Collection 2.0 presents a set of new parts adding several new functions,
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                     Placeholder assemblies and vectors for genomic integrations.
 
                     Placeholder assemblies and vectors for genomic integrations.
 
                      
 
                      
                      
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                     <br>
 
                     <h2 class="title">Enabling high throughput assembly with flexible placeholder parts</h2>
 
                     <h2 class="title">Enabling high throughput assembly with flexible placeholder parts</h2>
 
                        
 
                        
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                     parts that only differ in one part. We ourselves encountered this when  
 
                     parts that only differ in one part. We ourselves encountered this when  
 
                     we screened the promoters of the Marburg Collection in our new chassis:  
 
                     we screened the promoters of the Marburg Collection in our new chassis:  
                     these plasmids all were the same except for a different promoter.  
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                     These plasmids all were the same except for a different promoter.  
 
                     A “placeholder” is a part that gets assembled in a LVL1 construct just  
 
                     A “placeholder” is a part that gets assembled in a LVL1 construct just  
 
                     like any other part. Internal cutting sites however make it possible to  
 
                     like any other part. Internal cutting sites however make it possible to  
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                     success rate, meaning that in most cases it is sufficient to just pick  
 
                     success rate, meaning that in most cases it is sufficient to just pick  
 
                     one colony to get correct sequencing results.  
 
                     one colony to get correct sequencing results.  
                     https://2019.igem.org/File:T--Marburg--Toolbox_Promotorlibrary.svg
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<img src
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                     https://2019.igem.org/File:T--Marburg--Toolbox_Promotorlibrary.svg>
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<br>
 
                     This two step assembly heavily cuts down the invested workload and the  
 
                     This two step assembly heavily cuts down the invested workload and the  
 
                     cost per sample. We designed these placeholders so they could aid us in  
 
                     cost per sample. We designed these placeholders so they could aid us in  
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                     upscaling Modular cloning.  
 
                     upscaling Modular cloning.  
 
                     Aside from a use in screening, these parts can also be utilized to find  
 
                     Aside from a use in screening, these parts can also be utilized to find  
                     new sequences with a function: a set of mixed together defined  
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                     new sequences with a function: A set of mixed together defined  
                     oligonucleotides or  oligonucleotides with randomized bases can be  
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                     oligonucleotides with randomized bases can be  
 
                     inserted into a test vector containing a placeholder. This library of  
 
                     inserted into a test vector containing a placeholder. This library of  
 
                     test vectors is introduced into a host to test the biological  
 
                     test vectors is introduced into a host to test the biological  
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                     massively accelerates the search for parts with a desired quality. Such  
 
                     massively accelerates the search for parts with a desired quality. Such  
 
                     brute force approaches are becoming very popular in recent Synthetic  
 
                     brute force approaches are becoming very popular in recent Synthetic  
                     Biology (Smanski et al., 2014).
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                     Biology <a href="https://www.ncbi.nlm.nih.gov/pubmed/25419741 ">(Smanski et al., 2014)</a>.
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<br>
 
                      
 
                      
 
                     <h2 class="title">A small part in our Collection, a big application for the future</h2>
 
                     <h2 class="title">A small part in our Collection, a big application for the future</h2>

Revision as of 11:50, 7 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.


SYNECHOCOCCUS
ELONGATUS


An extensive review on the history of our chassis, recent findings and its potential future

STRAIN
ENGINEERING


Here we show the results of our Strain Engineering project to tame our "wolf"

MARBURG
COLLECTION 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