Team:British Columbia/Data
From 2012.igem.org
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<p align=center><img src="http://2012.igem.org/wiki/images/3/3f/Data_Page_diagram_.png"></p> | <p align=center><img src="http://2012.igem.org/wiki/images/3/3f/Data_Page_diagram_.png"></p> | ||
- | <font face=arial narrow size= | + | <font face=arial narrow size=4><b>Data for our Favourite New Parts</b></font></br></br><font face=arial narrow> |
<a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804000"><b>Main Page</a> - Strong Constitutive Promoter-ECFP generator, BBa_K804000:</b> This is an Enhanced Cyan Fluorescence Protein under a strong constitutive Ptet promoter (BBa_J23118). It constitutively expresses ECFP (BBa_E0420). The CFP output device does not have a LVA tag and has a strong RBS. Under a plate scanner, ECFP excites at 439nm and emits at 476nm. The fluorescence output from this construct can be used to monitor growth and population dynamics(only at exponential phase) in a microbial consortium.</br></br> | <a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804000"><b>Main Page</a> - Strong Constitutive Promoter-ECFP generator, BBa_K804000:</b> This is an Enhanced Cyan Fluorescence Protein under a strong constitutive Ptet promoter (BBa_J23118). It constitutively expresses ECFP (BBa_E0420). The CFP output device does not have a LVA tag and has a strong RBS. Under a plate scanner, ECFP excites at 439nm and emits at 476nm. The fluorescence output from this construct can be used to monitor growth and population dynamics(only at exponential phase) in a microbial consortium.</br></br> | ||
<a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804001"><b>Main Page</a> - Strong constitutive promoter-EYFP generator, BBa_K804001:</b> This is an Enhanced Yellow Fluorescence Protein under a strong constitutive Ptet promoter (BBa_J23118). It constitutively expresses EYFP (BBa_E0430). The CFP output device does not have a LVA tag and has a strong RBS. Under a plate scanner, EYFP excites at 514nm and emits at 527nm. The fluorescence output from this construct can be used to monitor growth and population dynamics(only at exponential phase) in a microbial consortium.</br></br> | <a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804001"><b>Main Page</a> - Strong constitutive promoter-EYFP generator, BBa_K804001:</b> This is an Enhanced Yellow Fluorescence Protein under a strong constitutive Ptet promoter (BBa_J23118). It constitutively expresses EYFP (BBa_E0430). The CFP output device does not have a LVA tag and has a strong RBS. Under a plate scanner, EYFP excites at 514nm and emits at 527nm. The fluorescence output from this construct can be used to monitor growth and population dynamics(only at exponential phase) in a microbial consortium.</br></br> | ||
<a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804012"><b>Main Page</a> - Rhamnose Inducible TrpA coding gene, BBa_K804012:</b> This part contains a rhamnose inducible (pRha) TrpA coding gene. Upon induction with rhamnose, TrpA is expressed for indole-3-glycerol-phosphate(InGP)binding and catalysis/cleavage of InGP to indole and glyceraldehyde-3-phosphate during an α reaction. This construct can be used to induce growth in Trp- auxotrophs.</br></br> | <a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804012"><b>Main Page</a> - Rhamnose Inducible TrpA coding gene, BBa_K804012:</b> This part contains a rhamnose inducible (pRha) TrpA coding gene. Upon induction with rhamnose, TrpA is expressed for indole-3-glycerol-phosphate(InGP)binding and catalysis/cleavage of InGP to indole and glyceraldehyde-3-phosphate during an α reaction. This construct can be used to induce growth in Trp- auxotrophs.</br></br> | ||
- | <font face=arial narrow size= | + | <font face=arial narrow size=4><b>Data for Pre-Existing Parts</b></font></br></br><font face=arial narrow> |
<b><a href="http://partsregistry.org/Part:BBa_K902065:Experience">Experience</a> - Rhamnose inducible, glucose repressible promoter (pRha), BBa_K902065 (Calgary, iGEM 2012):</b> We placed the Rhamnose promoter upstream of our TrpA and MetA coding genes. In the respective auxotrophs, induction by arabinose resulted in growth compared to a negative control as measured by a plate reader.</br> | <b><a href="http://partsregistry.org/Part:BBa_K902065:Experience">Experience</a> - Rhamnose inducible, glucose repressible promoter (pRha), BBa_K902065 (Calgary, iGEM 2012):</b> We placed the Rhamnose promoter upstream of our TrpA and MetA coding genes. In the respective auxotrophs, induction by arabinose resulted in growth compared to a negative control as measured by a plate reader.</br> | ||
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- | <font face=arial narrow size= | + | <font face=arial narrow size=4><b>We've also characterized the following parts</b></font></br></br><font face=arial narrow> |
<a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804007"><b>Main Page</a> - Constitutive ECFP generator - Arabinose inducible TrpA coding gene, BBa_K804007:</b> This part contains a constitutive ECFP generator along with an arabinose inducible (Pbad) Trp A coding gene. Upon induction with arabinose, TrpA is expressed for indole-3-glycerol-phosphate(InGP)binding and catalysis/cleavage of InGP to indole and glyceraldehyde-3-phosphate during an α reaction. This construct can be used to induce growth in Trp- auxotrophs and can be monitored by fluorescence for its population dynamics in co-culture with other auxotrophs. </br></br> | <a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804007"><b>Main Page</a> - Constitutive ECFP generator - Arabinose inducible TrpA coding gene, BBa_K804007:</b> This part contains a constitutive ECFP generator along with an arabinose inducible (Pbad) Trp A coding gene. Upon induction with arabinose, TrpA is expressed for indole-3-glycerol-phosphate(InGP)binding and catalysis/cleavage of InGP to indole and glyceraldehyde-3-phosphate during an α reaction. This construct can be used to induce growth in Trp- auxotrophs and can be monitored by fluorescence for its population dynamics in co-culture with other auxotrophs. </br></br> | ||
<a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804009"><b>Main Page</a> - Constitutive EYFP generator - Arabinose inducible TrpA coding gene, BBa_K804009:</b> This part contains a constitutive EYFP generator along with an arabinose inducible (Pbad) Trp A coding gene. Upon induction with arabinose, TrpA is expressed for indole-3-glycerol-phosphate(InGP)binding and catalysis/cleavage of InGP to indole and glyceraldehyde-3-phosphate during an α reaction. This construct can be used to induce growth in Trp- auxotrophs and can be monitored by fluorescence for its population dynamics in co-culture with other auxotrophs. </br></br> | <a href="http://partsregistry.org/wiki/index.php?title=Part:BBa_K804009"><b>Main Page</a> - Constitutive EYFP generator - Arabinose inducible TrpA coding gene, BBa_K804009:</b> This part contains a constitutive EYFP generator along with an arabinose inducible (Pbad) Trp A coding gene. Upon induction with arabinose, TrpA is expressed for indole-3-glycerol-phosphate(InGP)binding and catalysis/cleavage of InGP to indole and glyceraldehyde-3-phosphate during an α reaction. This construct can be used to induce growth in Trp- auxotrophs and can be monitored by fluorescence for its population dynamics in co-culture with other auxotrophs. </br></br> |
Revision as of 03:14, 4 October 2012

We have designed a tunable microbial consortium that distributes the 4S pathway, responsible for the bio-desulfurization of DBT, as a metabolic network.
There are two major genetic circuits contained within our system:The first is responsible for tuning the relative populations of the bacteria within the consortium. It is composed of different fluorescence markers under constitutive promoters, used to differentiate member of the population. As well as an amino acid biosynthesis genes under a inducible promoter, used to regulate the bacterial populations within the consortium.
The second is responsible for the 4S-desulfurization distributed metabolic network and was created by splitting the Dsz operon into each member species of our tunable consortium.