Difference between revisions of "Team:UParis BME/Wetlab"

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<p class="textContent">We used E.coli Bl21(DE3) for their competency and the plasmid DE3 carrying the T7 RNA polymerase gene. Indeed, we engineered the toehold switches with T7 promoter and T7 terminator that are recognised by the T7 RNA polymerase for its transcription into RNA. We proceeded in two parts to build the toehold switch: the repressed gene, GFP, in one hand, and the variable part of the toehold switch in another hand. Indeed, if we have a plasmid with GFP and the T7 terminator, we can reuse it to test any toehold switch by assembling the variable part in it.</p>
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<p class="textContent">We used <i>E.coli</i> Bl21(DE3) for their competency and the plasmid DE3 carrying the T7 RNA polymerase gene. Indeed, we engineered the toehold switches with T7 promoter and T7 terminator that are recognised by the T7 RNA polymerase for its transcription into RNA. We proceeded in two parts to build the toehold switch: the repressed gene, GFP, in one hand, and the variable part of the toehold switch in another hand. Indeed, if we have a plasmid with GFP and the T7 terminator, we can reuse it to test any toehold switch by assembling the variable part in it.</p>
  
 
<h4>Cloning using restriction enzymes</h4>
 
<h4>Cloning using restriction enzymes</h4>
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<p class="textContent">To do so, we amplified GFP from the GFP tagged protein via PCR. We designed the primers with the EcorI and XhoI restriction sites for the PCR reaction. Then, GFP has been digested using EcorI and XhoI restriction enzymes and has been purified with gel migration. We performed the same digestion and purification step on pET-24d(+) plasmid.</p>
 
<p class="textContent">To do so, we amplified GFP from the GFP tagged protein via PCR. We designed the primers with the EcorI and XhoI restriction sites for the PCR reaction. Then, GFP has been digested using EcorI and XhoI restriction enzymes and has been purified with gel migration. We performed the same digestion and purification step on pET-24d(+) plasmid.</p>
  
<p class="textContent">We achieved the ligation step between digested GFP insert and digested pET-24d(+) using NEB T4 ligase as described in the protocol below.  We then introduced the plasmid (containing the part BBa_K3878000)  into E.coli 10-beta to amplify it. </p>
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<p class="textContent">We achieved the ligation step between digested GFP insert and digested pET-24d(+) using NEB T4 ligase as described in the protocol below.  We then introduced the plasmid (containing the part BBa_K3878000)  into <i>E.coli</i> 10-BETA to amplify it. </p>
  
 
<p class="textContent"><a href="https://static.igem.org/mediawiki/2021/8/88/T--UParis_BME--cloning_RE.pdf">Protocol molecular cloning using Restriction Enzymes</a></p>  
 
<p class="textContent"><a href="https://static.igem.org/mediawiki/2021/8/88/T--UParis_BME--cloning_RE.pdf">Protocol molecular cloning using Restriction Enzymes</a></p>  
  
<p class="textContent">We designed the variable part of the toehold switch candidates with the T7 promoter and the restriction sites BamHI and BglII. We ordered the variable part from the toehold switch targeting the human miR-141 on IDT. The synthesized fragments, the variable part of the toehold switch, are received into plasmids from IDT, they are resuspended in an elution buffer and amplified into E. coli 10beta bacteria. Plasmids are then extracted from bacteria cultured in liquid TB media overnight using BioBasic EZ-10 Spin Column Plasmid DNA Miniprep Kit. We digested the variable part of the toehold switch candidates and the previously created plasmid (containing the part BBa_K3878000) with the restriction enzymes BamH1 and BglII (Fig. 3). The digested DNAs were purified and ligated using the same protocol as before. </p>
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<p class="textContent">We designed the variable part of the toehold switch candidates with the T7 promoter and the restriction sites BamHI and BglII. We ordered the variable part from the toehold switch targeting the human miR-141 on IDT. The synthesized fragments, the variable part of the toehold switch, are received into plasmids from IDT, they are resuspended in an elution buffer and amplified into <i>E. coli</i> 10BETA. Plasmids are then extracted from bacteria cultured in liquid TB media overnight using BioBasic EZ-10 Spin Column Plasmid DNA Miniprep Kit. We digested the variable part of the toehold switch candidates and the previously created plasmid (containing the part BBa_K3878000) with the restriction enzymes BamH1 and BglII (Fig. 3). The digested DNAs were purified and ligated using the same protocol as before. </p>
  
 
<h4>Golden gate assembly</h4>
 
<h4>Golden gate assembly</h4>
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<figure></figure>
 
<figure></figure>
  
<p class="textContent">The synthesized variable part of the toehold switch was amplified into E. coli 10beta bacteria. Plasmids were then extracted from bacteria cultured in liquid TB media using BioBasic EZ-10 Spin Column Plasmid DNA Miniprep Kit. The variable parts of the toehold switch were amplified via PCR technique to raise the quantity of insert as in the protocol below. Synthesized inserts are then amplified via polymerase chain reaction (PCR). We followed the protocol given by NEB® Golden Gate Assembly Kit (BsaI-HF®v2) for the assembly of one insert. (Fig. 5) </p>  
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<p class="textContent">The synthesized variable part of the toehold switch was amplified into <i>E. coli</i> 10 BETA. Plasmids were then extracted from bacteria cultured in liquid TB media using BioBasic EZ-10 Spin Column Plasmid DNA Miniprep Kit. The variable parts of the toehold switch were amplified via PCR technique to raise the quantity of insert as in the protocol below. Synthesized inserts are then amplified via polymerase chain reaction (PCR). We followed the protocol given by NEB® Golden Gate Assembly Kit (BsaI-HF®v2) for the assembly of one insert. (Fig. 5) </p>  
 
<p class="textContent"><a href="https://static.igem.org/mediawiki/2021/a/af/T--UParis_BME--cloning_GA.pdf">Protocol molecular cloning using Golden Gate assembly</a></p>  
 
<p class="textContent"><a href="https://static.igem.org/mediawiki/2021/a/af/T--UParis_BME--cloning_GA.pdf">Protocol molecular cloning using Golden Gate assembly</a></p>  
  

Revision as of 17:40, 20 October 2021