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</div> | </div> | ||
<p><i>Achievements: </i><br> | <p><i>Achievements: </i><br> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li>Successfully cloned a biobrick coding for secretion of NGF in pET43.1a and iGEM plasmid backbone pSB1C3, creating a new part <a href="http://parts.igem.org/Part:BBa_K2616000"style="font-weight: bold ; color:#85196a;" target="__blank"> BBa_K2616000</a>. </li> | <li>Successfully cloned a biobrick coding for secretion of NGF in pET43.1a and iGEM plasmid backbone pSB1C3, creating a new part <a href="http://parts.igem.org/Part:BBa_K2616000"style="font-weight: bold ; color:#85196a;" target="__blank"> BBa_K2616000</a>. </li> | ||
<li>Successfully sequenced <a href="http://parts.igem.org/Part:BBa_K2616000"style="font-weight: bold ; color:#85196a;" target="__blank"> BBa_K2616000</a> BBa_K2616000</a> in pSB1C3 and sent to iGEM registry. </li> | <li>Successfully sequenced <a href="http://parts.igem.org/Part:BBa_K2616000"style="font-weight: bold ; color:#85196a;" target="__blank"> BBa_K2616000</a> BBa_K2616000</a> in pSB1C3 and sent to iGEM registry. </li> | ||
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</ul><br></p> | </ul><br></p> | ||
<p><i>Next steps:</i><br> | <p><i>Next steps:</i><br> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li><b>Purify</b> secreted proNGF, and characterize its effects on neuron growth thanks to our microfluidic device. </li> | <li><b>Purify</b> secreted proNGF, and characterize its effects on neuron growth thanks to our microfluidic device. </li> | ||
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<div class="block title"><h1 id="References">REFERENCES</h1></div> | <div class="block title"><h1 id="References">REFERENCES</h1></div> | ||
<div class="block full"> | <div class="block full"> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li style="list-style-type: decimal;">Matsumoto, T., Numakawa, T., Yokomaku, D., Adachi, N., Yamagishi, S., | <li style="list-style-type: decimal;">Matsumoto, T., Numakawa, T., Yokomaku, D., Adachi, N., Yamagishi, S., | ||
Numakawa, Y., Kunugi, H., and Taguchi, T. (2006). <i>Brain-derived neurotrophicfactor-induced potentiation of glutamate and GABA release: Different dependency on signaling pathways and neuronal activity.</i>Mol. Cell. Neurosci. 31, 70–84 <br><br></li> | Numakawa, Y., Kunugi, H., and Taguchi, T. (2006). <i>Brain-derived neurotrophicfactor-induced potentiation of glutamate and GABA release: Different dependency on signaling pathways and neuronal activity.</i>Mol. Cell. Neurosci. 31, 70–84 <br><br></li> | ||
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</div> | </div> | ||
<p><i>Achievements: </i><br> | <p><i>Achievements: </i><br> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li>Successfully <b>observed axon growth</b> in microfluidic chip in presence of commercial NGF.</li> | <li>Successfully <b>observed axon growth</b> in microfluidic chip in presence of commercial NGF.</li> | ||
<li>Successfully observed <b>activity of our proNGF</b> in invitro cellular culture compared to commercial NGF with a concentration between 500 ng/mL and 900 ng/mL.</li> | <li>Successfully observed <b>activity of our proNGF</b> in invitro cellular culture compared to commercial NGF with a concentration between 500 ng/mL and 900 ng/mL.</li> | ||
</ul><br></p> | </ul><br></p> | ||
<p><i>Next steps:</i><br> | <p><i>Next steps:</i><br> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li><b>Statistical analysis</b> of our <i>in vitro</i> culture in presence of bacterial lysate. </li> | <li><b>Statistical analysis</b> of our <i>in vitro</i> culture in presence of bacterial lysate. </li> | ||
<li><b>Global proof of concept</b> in a microfluidic device containing neurons in one of the chamber, and our engineered bacteria in the other.</li> | <li><b>Global proof of concept</b> in a microfluidic device containing neurons in one of the chamber, and our engineered bacteria in the other.</li> | ||
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</div> | </div> | ||
<i><p>Achievements:<br></i> | <i><p>Achievements:<br></i> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li>Successfully cloned a biobrick coding for RIP secretion in pBR322 and in pSB1C3, creating a new part <a href="http://parts.igem.org/Part:BBa_K2616001"> Bba_K2616001 </a>. | <li>Successfully cloned a biobrick coding for RIP secretion in pBR322 and in pSB1C3, creating a new part <a href="http://parts.igem.org/Part:BBa_K2616001"> Bba_K2616001 </a>. | ||
<li>Successfully sequenced <a href="http://parts.igem.org/Part:BBa_K2616001"> Bba_K2616001 </a> in pSB1C3 and sent to iGEM registry. | <li>Successfully sequenced <a href="http://parts.igem.org/Part:BBa_K2616001"> Bba_K2616001 </a> in pSB1C3 and sent to iGEM registry. | ||
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</ul><br></p> | </ul><br></p> | ||
<p><i>Next steps:<br></i> | <p><i>Next steps:<br></i> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li>Clone the sensor device with inducible RIP production upon <i>S. aureus</i> detection.</li> | <li>Clone the sensor device with inducible RIP production upon <i>S. aureus</i> detection.</li> | ||
<li>Improve the characterization of RIP effect on biofilm formation with a more standardized assay.</li> | <li>Improve the characterization of RIP effect on biofilm formation with a more standardized assay.</li> | ||
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</div> | </div> | ||
<p><i><p>Achievements:<br></i> | <p><i><p>Achievements:<br></i> | ||
− | <ul style="text-align: left; | + | <ul style="text-align: left;list-style: disc;"> |
<li>Successfully cloned the biobrick <a href="http://parts.igem.org/Part:BBa_K2616002"style="font-weight: bold ; color:#85196a;"target="_blank"> Bba_K2616002</a> coding for toxin/antitoxin (CcdB/CcdA) system in pSB1C3, creating a <b>new part</b>.</li> | <li>Successfully cloned the biobrick <a href="http://parts.igem.org/Part:BBa_K2616002"style="font-weight: bold ; color:#85196a;"target="_blank"> Bba_K2616002</a> coding for toxin/antitoxin (CcdB/CcdA) system in pSB1C3, creating a <b>new part</b>.</li> | ||
<li>Successfully sequenced <a href="http://parts.igem.org/Part:BBa_K2616002"style="font-weight: bold ; color:#85196a;"target="_blank"> BBa_K2616002</a> in pSB1C3 and sent it to iGEM registry.</li> | <li>Successfully sequenced <a href="http://parts.igem.org/Part:BBa_K2616002"style="font-weight: bold ; color:#85196a;"target="_blank"> BBa_K2616002</a> in pSB1C3 and sent it to iGEM registry.</li> | ||
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</ul><br></p> | </ul><br></p> | ||
<p><i>Next steps:</i><br> | <p><i>Next steps:</i><br> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li>Find a system that kills bacteria when released in the environment rather than just stopping their growth.</li> | <li>Find a system that kills bacteria when released in the environment rather than just stopping their growth.</li> | ||
</ul> | </ul> | ||
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</div> | </div> | ||
<p><i>Achievements: </i><br> | <p><i>Achievements: </i><br> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li> Successfully demonstrated the <b> confinement of bacteria </b> by a membrane filter. </li> | <li> Successfully demonstrated the <b> confinement of bacteria </b> by a membrane filter. </li> | ||
<li> Successfully <b> coated </b> alumina oxide membranes with PEDOT:Cl and PEDOT:Ts .</li> | <li> Successfully <b> coated </b> alumina oxide membranes with PEDOT:Cl and PEDOT:Ts .</li> | ||
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<li> Successfully <b> enhanced biocompatibilty </b> with PEDOT:Cl coating. </li></ul><br></p> | <li> Successfully <b> enhanced biocompatibilty </b> with PEDOT:Cl coating. </li></ul><br></p> | ||
<p><i>Next steps:</i><br> | <p><i>Next steps:</i><br> | ||
− | <ul style="text-align: left;"> | + | <ul style="text-align: left;list-style: disc;"> |
<li> Enhance <b> measurement precision </b> for membrane conductivity with and without biofilm.</li> | <li> Enhance <b> measurement precision </b> for membrane conductivity with and without biofilm.</li> | ||
<li> Improve <b> PEDOT:PSS coating </b> to form a uniform layer.</li> | <li> Improve <b> PEDOT:PSS coating </b> to form a uniform layer.</li> |
Latest revision as of 14:55, 10 November 2018
RECONNECT NERVES: DNA ASSEMBLY
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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 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.
Next steps:
- Purify secreted proNGF, and characterize its effects on neuron growth thanks to our microfluidic device.
RECONNECT NERVES: CELL CULTURE
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Summary
Achievements:
- Successfully observed axon growth in microfluidic chip in presence of commercial NGF.
- Successfully observed activity of our proNGF in invitro cellular culture compared to commercial NGF with a concentration between 500 ng/mL and 900 ng/mL.
Next steps:
- Statistical analysis of our in vitro culture in presence of bacterial lysate.
- 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. Although there was a high variability in our results, and we used several protocols to overcome it, in one case, we were able to observe a reduction in biofilm formation in the presence of our RIP.
Next steps:
- Clone the sensor device with inducible RIP production upon S. aureus detection.
- Improve the characterization of RIP effect on biofilm formation with a more standardized assay.
KILL SWITCH
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Summary
Achievements:
- Successfully cloned the biobrick Bba_K2616002 coding for toxin/antitoxin (CcdB/CcdA) system in pSB1C3, creating a new part.
- Successfully sequenced BBa_K2616002 in pSB1C3 and sent it to iGEM registry.
- Successfully observed normal growth 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.
MEMBRANE
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Summary
Achievements:
- Successfully demonstrated the confinement of bacteria by a membrane filter.
- Successfully coated alumina oxide membranes with PEDOT:Cl and PEDOT:Ts .
- Partially coated alumina oxide membranes with PEDOT:PSS.
- Successfully demonstrated the enhanced conductivity induced by the PEDOT:Cl and PEDOT:Ts coating.
- Successfully enhanced biocompatibilty with PEDOT:Cl coating.
Next steps:
- Enhance measurement precision for membrane conductivity with and without biofilm.
- Improve PEDOT:PSS coating to form a uniform layer.