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<div class="legend"><b>Figure 11: </b> Schematic representation of the RIP production cassette.</div> | <div class="legend"><b>Figure 11: </b> Schematic representation of the RIP production cassette.</div> | ||
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− | <p>We gene synthesized our DNA constructs commercially. Once we received the sequence encoding for this production cassette, named Seq8 (461 bp) in the commercial plasmid pEX-A258, we amplified it in competent <i>E. coli</i> DH5<FONT face="Raleway">α</FONT>. After bacterial culture and plasmid DNA extraction, we digested the commercial vector with <b>EcoRI</b> and <b>PstI</b> restriction enzymes. We extracted the inserts from the gel and performed a ligation by using specific overlaps into <b>linearized pBR322</b> for RIP expression and into <b>pSB1C3</b> for iGEM sample submission.<br> | + | <p>We gene synthesized our DNA constructs commercially. Once we received the sequence encoding for this production cassette, named Seq8 (461 bp) in the commercial plasmid pEX-A258, we amplified it in competent <i>E. coli</i> DH5<FONT face="Raleway">α</FONT>. After bacterial culture and plasmid DNA extraction, we digested the commercial vector with <b>EcoRI</b> and <b>PstI</b> restriction enzymes. We extracted the inserts from the gel and performed a ligation by using specific overlaps into <b>linearized pBR322</b> for RIP expression and into <b>pSB1C3</b> for iGEM sample submission. We proved that our vectors contained the insert by electrophoresis (Figure 12, 13).<br> |
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<img src="https://static.igem.org/mediawiki/2018/4/46/T--Pasteur_Paris--PSB1C3_RIP.png"> | <img src="https://static.igem.org/mediawiki/2018/4/46/T--Pasteur_Paris--PSB1C3_RIP.png"> |
Revision as of 17:07, 17 October 2018
RECONNECT NERVES
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Summary
Achievements:
- Successfully cloned a biobrick coding for secretion of NGF in pET43.1a and iGEM plasmid backbone pSB1C3, creating a new part BBa_K2616000.
- Successfully sequenced BBa_K2616000 in pSB1C3 and sent to iGEM registry.
- Successfully co-transformed E. coli with plasmid secreting proNGF and plasmid expressing the secretion system, creating bacteria capable of secreting NGF in the medium.
- Successfully characterized production of proNGF thanks to mass spectrometry and western blot.
- Successfully observed axon growth in microfluidic chip in presence of commercial NGF.
Next steps:
- Purify secreted proNGF, and characterize its effects on neuron growth thanks to our microfluidic device.
- Global proof of concept in a microfluidic device containing neurons in one of the chamber, and our engineered bacteria in the other.
FIGHT INFECTIONS
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Summary
Achievements:
- Successfully cloned a biobrick coding for RIP secretion in pBR322 and in pSB1C3, creating a new part Bba_K2616001 .
- Successfully sequenced Bba_K2616001 in pSB1C3 and sent to iGEM registry.
- Successfully cultivated S. aureus biofilms in 96 well plates with different supernatants.
Next steps:
- Clone the sensor device with inducible RIP production upon S. aureus detection.
- Improve the characterization of RIP effect on biofilm formation.
KILL SWITCH
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Summary
Achievements:
- Successfully cloned a biobrick coding for toxin/antitoxin (CcdB/CcdA) system in iGEM plasmid backbone, creating a new part.
- Successfully observed survival of our engineered bacteria at 25°C and 37°C and absence of growth at 18°C and 20°C, showing the efficiency of the kill switch.
Next steps:
- Find a system that kills bacteria when released in the environment rather than just stopping their growth.