Team:ZJU-China/project.htm

From 2012.igem.org

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<h2>Riboscaffold -- Clover</h2>
 
<p align="justify">&nbsp;</p>
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<h2>Summary</h2>
<h2>Summary</h2>
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<p align="justify">Candidate list:</p>
<p align="justify">Candidate list:</p>
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<h2>1. Salicylate pathway (Group: iGEM2006_MIT)</h2>
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<h2>1. Salicylate pathway</h2>
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<h2>(Group: iGEM2006_MIT)</h2>
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<p align="justify">Assessment: </p>
<p align="justify">Assessment: </p>
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<p align="justify">The characterization method of gas chromatography is difficult to perform. First, what can be analyzed is methyl salicylate production, that is to say, another enzyme should be co-transformed to E.coli too, which will increase cell’s burden and reduce the ratio of successful co-transformation. Second, it is not convenient for us to borrow the relative machine.</p>
<p align="justify">The characterization method of gas chromatography is difficult to perform. First, what can be analyzed is methyl salicylate production, that is to say, another enzyme should be co-transformed to E.coli too, which will increase cell’s burden and reduce the ratio of successful co-transformation. Second, it is not convenient for us to borrow the relative machine.</p>
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<h2>2. Pyocyanin pathway (Group: iGEM2007_Glasgow)</h2>
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<h2>2. Pyocyanin pathway</h2>
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<h2>(Group: iGEM2007_Glasgow)</h2>
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<p align="justify">Assessment: </p>
<p align="justify">Assessment: </p>
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<p align="justify">Through there are exactly two enzymes involved in this pathway, but the source of material, phenazine-1-carboxylic acid (PCA), is not mentioned. And it not easy to measure the amount of pyocyanin. </p>
<p align="justify">Through there are exactly two enzymes involved in this pathway, but the source of material, phenazine-1-carboxylic acid (PCA), is not mentioned. And it not easy to measure the amount of pyocyanin. </p>
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<h2>3. Lycopene pathway (Group: iGEM2009_Cambridge) </h2>
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<h2>3. Lycopene pathway</h2>
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<h2>(Group: iGEM2009_Cambridge) </h2>
<p align="justify">&nbsp;</p>
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<p align="justify">Assessment: </p>
<p align="justify">Assessment: </p>
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<p align="justify">Lycopene is visible red and its substrate, FPP, is colorless. So measurement is quite feasible. But there are at least three proteins in this pathway, which will increase the burden of cell. But in future work, we could have a try.</p>
<p align="justify">Lycopene is visible red and its substrate, FPP, is colorless. So measurement is quite feasible. But there are at least three proteins in this pathway, which will increase the burden of cell. But in future work, we could have a try.</p>
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<h2>4. Holo- α -phycoerythrocyanin pathway (Group: iGEM2004_UTAustin)</h2>
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<h2>4. Holo- α -phycoerythrocyanin pathway</h2>
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<h2>(Group: iGEM2004_UTAustin)</h2>
<p align="justify">&nbsp;</p>
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<p align="justify">Assessment: </p>
<p align="justify">Assessment: </p>
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<p align="justify">Heme is metabolic product of E.coli and Holo-α-phycoerythrocyanin is blue. But at least 5 proteins should be expressed in E.coli.</p>
<p align="justify">Heme is metabolic product of E.coli and Holo-α-phycoerythrocyanin is blue. But at least 5 proteins should be expressed in E.coli.</p>
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<h2>5. BPA degradation pathway (Group: iGEM2008_University_of_Alberta)</h2>
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<h2>5. BPA degradation pathway</h2>
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<h2>(Group: iGEM2008_University_of_Alberta)</h2>
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<p align="justify">Assessment: </p>
<p align="justify">Assessment: </p>
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<p align="justify">Bisphenol A is degraded by BisdA and BisdB. But BPA is toxic to cells.</p>
<p align="justify">Bisphenol A is degraded by BisdA and BisdB. But BPA is toxic to cells.</p>
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<h2>6. IAM pathway (Group: iGEM2011_Imperial)</h2>
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<h2>6. IAM pathway</h2>
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<h2>(Group: iGEM2011_Imperial)</h2>
<p align="justify">&nbsp;</p>
<p align="justify">&nbsp;</p>
<p align="justify">Assessment: </p>
<p align="justify">Assessment: </p>
<p align="justify">&nbsp;</p>
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<p align="justify">Five pathways described above all have some drawbacks, finally, only one pathway left, IAM pathway. The two-step IAM pathway generates indole-3-acetic acid (IAA) from the precursor tryptophan. IAA tryptophan monooxygenase (IaaM) catalyses the oxidative carboxylation of L-tryptophan to indole-3-acetamide, which is hydrolysed to IAA and ammonia by indoleacetamide hydrolase (IaaH). </p>
<p align="justify">Five pathways described above all have some drawbacks, finally, only one pathway left, IAM pathway. The two-step IAM pathway generates indole-3-acetic acid (IAA) from the precursor tryptophan. IAA tryptophan monooxygenase (IaaM) catalyses the oxidative carboxylation of L-tryptophan to indole-3-acetamide, which is hydrolysed to IAA and ammonia by indoleacetamide hydrolase (IaaH). </p>
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<h2>Applications of RNA Scaffold & Aptamers</h2>
 
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<h2>1. RNA aptamers take place of fluorescent proteins </h2>
<h2>1. RNA aptamers take place of fluorescent proteins </h2>
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<p align="justify">&nbsp;</p>

Revision as of 09:28, 26 September 2012

PROJECT

01 ABSTRACT

02 BACKGROUND

03 S0: BASIC RNA SCAFFOLD

04 S1: RIBOSCAFFOLD

05 S2: SCAFFOLD LIBRARY

06 S3: BIOSYNTHESIS OF IAA

07 RESULTS

08 APPLICATIONS