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| <p align="justify">The aim of our project is to expand the use of insect cells in synthetic biology. We believe that we have the opportunity to enrich the part registry with biobricks designed for an insect chassis. To accomplish our goal, our team is going to introduce various biobricks that contain basic functional parts necessary to build your own expression cassette for insect cells. In addition, we want to validate the use of the CRISPR/Cas9 System in the Sf9 cells for specific genome editing. </p> | | <p align="justify">The aim of our project is to expand the use of insect cells in synthetic biology. We believe that we have the opportunity to enrich the part registry with biobricks designed for an insect chassis. To accomplish our goal, our team is going to introduce various biobricks that contain basic functional parts necessary to build your own expression cassette for insect cells. In addition, we want to validate the use of the CRISPR/Cas9 System in the Sf9 cells for specific genome editing. </p> |
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| <p align="justify">This part encodes a sequence capable to add a purification tag (6X His) at the 3’ terminus of a desired protein. Furthermore, by using the reporter gene (nanoluc) it’s possible to quantify indirectly the protein concentration. The T2A sequence cleaves the protein, producing the protein of interest tagged with HisTag and nanoluc separately. This part has been codon optimized for Spodoptera frugiperda (Sf9).</p> | | <p align="justify">This part encodes a sequence capable to add a purification tag (6X His) at the 3’ terminus of a desired protein. Furthermore, by using the reporter gene (nanoluc) it’s possible to quantify indirectly the protein concentration. The T2A sequence cleaves the protein, producing the protein of interest tagged with HisTag and nanoluc separately. This part has been codon optimized for Spodoptera frugiperda (Sf9).</p> |
| <img src="https://static.igem.org/mediawiki/2015/e/e9/Tec-Monterrey_6xHIS-T2A-Nanoluc_Map.png" alt="6xHIS-T2A-Nanoluc Map" class="img-responsive"/> | | <img src="https://static.igem.org/mediawiki/2015/e/e9/Tec-Monterrey_6xHIS-T2A-Nanoluc_Map.png" alt="6xHIS-T2A-Nanoluc Map" class="img-responsive"/> |
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| <h1>Results</h1> | | <h1>Results</h1> |
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| <h1>Conclusions</h1> | | <h1>Conclusions</h1> |
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| <h1>References</h1> | | <h1>References</h1> |
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| <li>Drugmand, J.-C., Schneider, Y.-J., & Agathos, S. N. (2012). Insect cells as factories for biomanufacturing. Biotechnology Advances, 30(5), 1140-1157. doi:http://dx.doi.org/10.1016/j.biotechadv.2011.09.014</li> | | <li>Drugmand, J.-C., Schneider, Y.-J., & Agathos, S. N. (2012). Insect cells as factories for biomanufacturing. Biotechnology Advances, 30(5), 1140-1157. doi:http://dx.doi.org/10.1016/j.biotechadv.2011.09.014</li> |
| <li>Fernandes, F., Vidigal, J., Dias, M. M., Prather, K. L. J., Coroadinha, A. S., Teixeira, A. P., & Alves, P. M. (2012). Flipase-mediated cassette exchange in Sf9 insect cells for stable gene expression.Biotechnology and Bioengineering, 109(11), 2836-2844. doi:10.1002/bit.24542</li> | | <li>Fernandes, F., Vidigal, J., Dias, M. M., Prather, K. L. J., Coroadinha, A. S., Teixeira, A. P., & Alves, P. M. (2012). Flipase-mediated cassette exchange in Sf9 insect cells for stable gene expression.Biotechnology and Bioengineering, 109(11), 2836-2844. doi:10.1002/bit.24542</li> |
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| <li>magghe, G., Goodman, C., & Stanley, D. (2009). Insect cell culture and applications to research and pest management. In Vitro Cellular & Developmental Biology - Animal, 45(3-4), 93-105. doi:10.1007/s11626-009-9181-x</li> | | <li>magghe, G., Goodman, C., & Stanley, D. (2009). Insect cell culture and applications to research and pest management. In Vitro Cellular & Developmental Biology - Animal, 45(3-4), 93-105. doi:10.1007/s11626-009-9181-x</li> |
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