Team:StanfordBrownSpelman/Cellulose Cross Linker
From 2014.igem.org
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<h6><b></b>Our initial approach was to use the cellulose binding domains from <i>C. cellulovorans </i> <a href="http://parts.igem.org/Part:BBa_K863111">(part BBa_K863111)</a></a> on either side of the streptavidin domain <a href="http://parts.igem.org/Part:BBa_K283010">(part BBa_K283010) under a T7 promoter in the PSB1A3 backbone.</a></a>We also included a His-Tag for protein purification. The protein is then expressed in <i> E. coli </i>. Once purified, the cross-linking protein is tested on bacterial cellulose we grew in our lab from the organism <i>G. hansenii</i>. By dotting the protein on the cellulose, the cellulose binding domains will bind to the cellulose fibers and leave the streptavidin domain unbound and ready to bind biotin.</center></h6> | <h6><b></b>Our initial approach was to use the cellulose binding domains from <i>C. cellulovorans </i> <a href="http://parts.igem.org/Part:BBa_K863111">(part BBa_K863111)</a></a> on either side of the streptavidin domain <a href="http://parts.igem.org/Part:BBa_K283010">(part BBa_K283010) under a T7 promoter in the PSB1A3 backbone.</a></a>We also included a His-Tag for protein purification. The protein is then expressed in <i> E. coli </i>. Once purified, the cross-linking protein is tested on bacterial cellulose we grew in our lab from the organism <i>G. hansenii</i>. By dotting the protein on the cellulose, the cellulose binding domains will bind to the cellulose fibers and leave the streptavidin domain unbound and ready to bind biotin.</center></h6> | ||
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- | <div class="sub4"><a href= | + | <div class="sub4"><a href=https://static.igem.org/mediawiki/2014/2/2b/Cross-LinkingAdapter.pdf" target="_blank"><img src="https://static.igem.org/mediawiki/2014/2/25/SBS_iGEM_2014_download.png"></a><a href="https://static.igem.org/mediawiki/2014/2/2b/Cross-LinkingAdapter.pdf">Click here to go to our project journal, which details our design and engineering process and included descriptions of the protocols we developed and used.</a></div> |
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<h5><center>References</h5> | <h5><center>References</h5> | ||
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- | 1. | + | 1. Linder M <i>et al.</i> (1996) The cellulose-binding domain of the major cellobiohydrolase of Trichoderma reesei exhibits true reversibility and a high exchange rate on crystalline cellulose. <i>PNAS</i> 93: 12251-12255. PMID: <a href="http://www.ncbi.nlm.nih.gov/pmc/articles/PMC37976/?page=1" target="_blank">PMC37976</a>.<br><br> |
- | 2. | + | 2. Chivers CE <i>et al.</i> (2011) How the biotin–streptavidin interaction was made even stronger: investigation via crystallography and a chimaeric tetramer. <i>Biochem.J.</i> 435: 55-63. PMID: <a href="http://www.ncbi.nlm.nih.gov/pubmed/21241253" target="_blank">21241253</a>.</div> |
- | investigation via crystallography and a chimaeric tetramer<i>Biochem.J.</i> 55 PMID: <a href="http://www.ncbi.nlm.nih.gov/pubmed/21241253"> | + | |
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- | Built atop Foundation. Content & Development © Stanford–Brown–Spelman iGEM 2014. | + | Built atop Foundation. Content & Development © Stanford–Brown–Spelman iGEM 2014. |
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Latest revision as of 00:31, 18 October 2014