Difference between revisions of "Team:Valencia UPV/Achievements"
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<p style="font-weight:bold">Design of a synthetic biological circuit that acts as an eukaryotic decoder able to produce 2<sup>N</sup> outputs in response to N inputs. <a href="https://2015.igem.org/Team:Valencia_UPV/Circuit">Results: Circuit</a></p> | <p style="font-weight:bold">Design of a synthetic biological circuit that acts as an eukaryotic decoder able to produce 2<sup>N</sup> outputs in response to N inputs. <a href="https://2015.igem.org/Team:Valencia_UPV/Circuit">Results: Circuit</a></p> | ||
− | <ul><li>The circuit is genetically controlled by applying only two different light wavelengths inputs due to the implemented optogenetic elements</li> | + | <ul><li>The circuit is genetically controlled by applying only two different light wavelengths inputs due to the implemented optogenetic elements.</li> |
− | <li>The circuit has memory. It is able to ‘remember’ sequential light inputs in | + | <li>The circuit has memory. It is able to ‘remember’ sequential light inputs in order to obtain the desired output due to the implementation of phage recombinases.</li> |
<li>Capable to process the information remotely according to people specific needs thanks to the use of light as inducers .</li> | <li>Capable to process the information remotely according to people specific needs thanks to the use of light as inducers .</li> | ||
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key control elements for a proper functioning of the circuit. <a href="https://2015.igem.org/Team:Valencia_UPV/Modeling">Results: Modeling</a> </p> | key control elements for a proper functioning of the circuit. <a href="https://2015.igem.org/Team:Valencia_UPV/Modeling">Results: Modeling</a> </p> | ||
− | <ul><li>Identifying | + | <ul><li>Identifying the key components which are critical in order to get the desired response of our device: |
− | fast enough recombinases, good light sensing of optogenetically controlled switches | + | fast enough recombinases, good light sensing of optogenetically controlled switches. </li> |
<li>Exploring conditions to improve the performance of our circuit, reducing the time needed to majorly produce the | <li>Exploring conditions to improve the performance of our circuit, reducing the time needed to majorly produce the | ||
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</ul><br/> | </ul><br/> | ||
− | |||
− | + | <p style="font-weight:bold">Construction of the key elements composing the circuit</p> | |
+ | <ul> | ||
+ | <li><p style="font-weight:bold">A Red/Far Red light-inducible switch implementation in <i>N. benthamiana</i> plants to induce | ||
− | < | + | the expression of the firefly luciferase gene. Results: Red/Far red light switch</p></li> |
+ | |||
+ | <ul>-Successful assembly by adapting the main control element genes (PIF6 and PhyB) to different DNA-binding domains: | ||
LexABD, LacIBD and Gal4BD</li> | LexABD, LacIBD and Gal4BD</li> |
Revision as of 22:34, 18 September 2015
Design of a synthetic biological circuit that acts as an eukaryotic decoder able to produce 2N outputs in response to N inputs. Results: Circuit An in silico approach of the biological decoder that has allowed a wide understanding of the
key control elements for a proper functioning of the circuit. Results: Modeling Construction of the key elements composing the circuit A Red/Far Red light-inducible switch implementation in N. benthamiana plants to induce
the expression of the firefly luciferase gene. Results: Red/Far red light switch A blue light dependant gene expression system, which has been transiently implemented in N.
benthamiana leaf tissues for the production of a gene of interest. Results: Blue light switch A de novo design of a violet/cyan light-dependent toggle switch for expression of a target gene
in plants. A plant codon usage optimization for BxbI and PhiC31 recombinases and its expression in plants
for GFP visualization A plant capable to express three different medicaments. Results: Drugs Seedlings assays to prove the capacity of certain plant species to be transformed for gene
expression. Designed and implemented a portable bioreactor that contains the necessary elements and where
all the process of transformation and product selection happens. Magic lamp Created a virtual laboratory called Synbiocraft , where anyone just with a computer game can
feel the real experience of working in a lab without expending huge amounts of money. There you will be able to recreate
any project ever performed.Medals
Achievements
-Successful assembly by adapting the main control element genes (PIF6 and PhyB) to different DNA-binding domains:
LexABD, LacIBD and Gal4BD
Future perspectives