Team:Uppsala University/Translational
From 2012.igem.org
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<b>Conclusion</b> | <b>Conclusion</b> | ||
- | We managed to engineer artificial small RNA (sRNA) inhibiting the translation of the antibiotic resistance gene AAC(6’)Ib-cr isolated from a multiresistant bacterial outbreak in a hospital in Sweden. In the process, we managed to demonstrate a standardized method for construction and screening for sRNA successfully against a target mRNA. In practice, sRNA induced silencing of any gene of interest. | + | We managed to engineer artificial small RNA (sRNA) inhibiting the translation of the antibiotic resistance gene AAC(6’)Ib-cr isolated from a multiresistant bacterial outbreak in a hospital in Sweden. In the process, we managed to demonstrate a standardized method for construction and screening for sRNA successfully against a target mRNA. In practice, sRNA induced silencing of any gene of interest. <br> |
<a href="http://partsregistry.org/Part:BBa_K864444">BBa_K864444</a> is our template target part in which the gene of interest should be inserted. | <a href="http://partsregistry.org/Part:BBa_K864444">BBa_K864444</a> is our template target part in which the gene of interest should be inserted. | ||
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For detailed experimental approach see the <a href="https://2012.igem.org/Team:Uppsala_University/Project">project description page.</a> | For detailed experimental approach see the <a href="https://2012.igem.org/Team:Uppsala_University/Project">project description page.</a> | ||
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IntaRNA, an RNA-RNA-interaction prediction software adapted for sRNA and ncRNA interactions [1] was used to predict the sRNA-mRNA interactions of the candidate sRNAs against the target mRNA containing the fusion between AAC(6’)-5’UTR. See <a href="https://2012.igem.org/Team:Uppsala_University/Modelling">modelling page</a> for details. Some of the sRNAs corresponding to the highest SYFP2 downregulation showed a significant basepair matching close to the RBS of the AAC(6’)-5’UTR. A few of the sRNAs was predicted to hybridize in the SYFP2 region of the mRNA.</p><br><br> | IntaRNA, an RNA-RNA-interaction prediction software adapted for sRNA and ncRNA interactions [1] was used to predict the sRNA-mRNA interactions of the candidate sRNAs against the target mRNA containing the fusion between AAC(6’)-5’UTR. See <a href="https://2012.igem.org/Team:Uppsala_University/Modelling">modelling page</a> for details. Some of the sRNAs corresponding to the highest SYFP2 downregulation showed a significant basepair matching close to the RBS of the AAC(6’)-5’UTR. A few of the sRNAs was predicted to hybridize in the SYFP2 region of the mRNA.</p><br><br> | ||
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<p style="margin-right:0px;font-size:10px;margin-bottom:10px;float:left;width:300px"> | <p style="margin-right:0px;font-size:10px;margin-bottom:10px;float:left;width:300px"> | ||
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- | <b>Downregulation of antibiotic resistance </b><br> | + | <b>Downregulation of antibiotic resistance on a F-plasmid</b><br> |
- | The next | + | The next step was to test if the isolated sRNA also showed downregulation of the actual antibiotic resistance gene. To do this, we tested four different sRNA clones (UU17, UU37, UU46, UU55) on the AAC(6’)Ib-cr gene on a F-plasmid. An E-test was performed and the result showed that three of our four clones tested actually downregulates the resistance gene. This supports the hypothesis that it is the actual 5’UTR that is the key to control the the expression of the gene with our isolated sRNA.</p> |
<p><br> | <p><br> | ||
To better understand the nature of small RNA downregulation and inhibiting translation of our gene of interest, we modeled the interactions between our sRNA and the mRNA. You can read more about this <a href="https://2012.igem.org/Team:Uppsala_University/Modelling">here</a>. | To better understand the nature of small RNA downregulation and inhibiting translation of our gene of interest, we modeled the interactions between our sRNA and the mRNA. You can read more about this <a href="https://2012.igem.org/Team:Uppsala_University/Modelling">here</a>. | ||
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+ | <p style="margin-right:0px;font-size:10px;margin-bottom:10px;float:left;width:300px"> | ||
+ | <a href="https://static.igem.org/mediawiki/2012/8/86/E-test_results_clinical.png"><img src="https://static.igem.org/mediawiki/2012/8/86/E-test_results_clinical.png" width="300"></a> | ||
+ | </p> | ||
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+ | <p><b>Test on clinical plasmid</b><br> | ||
+ | After testing our sRNA against the antibiotic resistance gene AAC(6') on a F-plasmid, the next challenge was to test them against a clinical plasmid (pUUH239.2) isolated from the outbreak of multiresistance ESBL E.coli bacteria at Uppsala University hospital in Sweden. Our best sRNA clone showed 92 % downregulation of antibiotic resistance. | ||
+ | </p> | ||
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Revision as of 17:15, 26 October 2012
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