Difference between revisions of "Team:Cornell/wetlab"
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− | <b>EDA-GSG series</b>: These parts included a newly discovered fusion protein called KHG/KDPG adolase (EDA). Since EDA has never been characterized or BioBricked in iGEM’s history, we wanted to test it with a known endoglucanase called cel5a. The first BioBrick included a constitutive T7 promoter, a ribosome-binding site, the EDA gene, the GSG linker sequence, BamHI/NdeI restriction sites for modularity, a 6X Histidine tag to facilitate protein purification, and a terminator. The second BioBrick included a cel5a gene at the modular site | + | <b>EDA-GSG series</b>: These parts included a newly discovered fusion protein called KHG/KDPG adolase (EDA). Since EDA has never been characterized or BioBricked in iGEM’s history, we wanted to test it with a known endoglucanase called cel5a. The first BioBrick included a constitutive T7 promoter, a ribosome-binding site, the EDA gene, the GSG linker sequence, BamHI/NdeI restriction sites for modularity, a 6X Histidine tag to facilitate protein purification, and a terminator. The second BioBrick included a cel5a gene at the modular site. |
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<h1 id = "growth"><i><b>Flavobacterium</b></i> Growth </h1> | <h1 id = "growth"><i><b>Flavobacterium</b></i> Growth </h1> | ||
− | <i>Flavobacterium psychrophilum</i> is a non-model organism that no iGEM team has worked with before. We thus needed to modify our current bacterial culture techniques in order to successfully work with this novel bacterium. Thus, we collaborated with Dr. Rod Getchell of the Aquatic Animal Health Lab at Cornell’s College of Veterinary Medicine in order to fully realize our goals in characterizing <i>F. psychrophilum</i>. Dr. Getchell provided us with two strains of <i>F. psychrophilum</i> isolates (strain 025 and strain 431), recovered from the kidneys of systemically infected Chinook and Coho salmon in the Great Lakes. Below is our characterized growth curve of <i>F. psychrophilum</i> strain 025 and 431 in liquid cytophaga broth without the presence of EcnB peptide. | + | <p><i>Flavobacterium psychrophilum</i> is a non-model organism that no iGEM team has worked with before. We thus needed to modify our current bacterial culture techniques in order to successfully work with this novel bacterium. Thus, we collaborated with Dr. Rod Getchell of the Aquatic Animal Health Lab at Cornell’s College of Veterinary Medicine in order to fully realize our goals in characterizing <i>F. psychrophilum</i>. Dr. Getchell provided us with two strains of <i>F. psychrophilum</i> isolates (strain 025 and strain 431), recovered from the kidneys of systemically infected Chinook and Coho salmon in the Great Lakes. Below is our characterized growth curve of <i>F. psychrophilum</i> strain 025 and 431 in liquid cytophaga broth without the presence of EcnB peptide. </p> |
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<h1 id = "zoi">Results</h1> | <h1 id = "zoi">Results</h1> | ||
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<h1 id="refs">References </h1> | <h1 id="refs">References </h1> | ||
<p>[1] Garcia, L., & Molineux, I. (1995). Rate of translocation of bacteriophage T7 DNA across the membranes of Escherichia coli. Journal of Bacteriology, 177(14), 4066-4076.</p><p> [2] Stelzmueller, I., Biebl, M., Wiesmayr, S., Eller, M., Hoeller, E., Fille, M., Weiss, G., Lass-Floerl, C. and Bonatti, H. (2006), Ralstonia pickettii—innocent bystander or a potential threat?. Clinical Microbiology and Infection, 12: 99–101. </p><p> [3] Kittichotirat, W., Good, N., Hall, R., Bringel, F., Lajus, A., Medigue, C., . . . Kalyuzhnaya, M. (2011). Genome Sequence of Methyloversatilis universalis FAM5T, a Methylotrophic Representative of the Order Rhodocyclales. Journal of Bacteriology, 193(17), 4541-4542. doi:10.1128/JB.05331-11 </p><p> [4] Boudon, S., Manceau, C., & Nottéghem, J. (2005). Structure and Origin of Xanthomonas arboricola pv. pruni Populations Causing Bacterial Spot of Stone Fruit Trees in Western Europe. Phytopathology, 95(9), 1081-1088. </p><p> [5] Gai, Z., Wang, X., Tang, H., Tai, C., Tao, F., Wu, G., & Xu, P. (2011). Genome Sequence of Sphingobium yanoikuyae XLDN2-5, an Efficient Carbazole-Degrading Strain. Journal of Bacteriology, 193(22), 6404-6405. doi:10.1128/JB.06050-11 </p><p> [6] Kersters, K., Hinz, K., Hertle, A., Segers, P., Lievens, A., Siegmann, O., & Ley, J. (1984). Bordetella avium sp. nov., Isolated from the Respiratory Tracts of Turkeys and Other Birds. International Journal of Systematic Bacteriology, 34(1), 56-70. doi:10.1099/00207713-34-1-56 </p><p> [7] Holguin, G., Patten, C., & Glick, B. (1999). Genetics and molecular biology of Azospirillum. Biology and Fertility of Soils, 29(1), 10-23. doi:10.1007/s003740050519 </p><p> [8] Stehr-Green, J. K., Centers for Disease Control and Prevention, & National Institutes of Health. (2000). Foodborne disease outbreak investigation: epidemiologic case studies. In Foodborne disease outbreak investigation: epidemiologic case studies. Department of Health & Human Services. </p><p> [9] Enterobacter aerogenes. (2011, April 22). Retrieved August 1, 2015, from https://microbewiki.kenyon.edu/index.php/Enterobacter_aerogenes </p><p> [10] Rice, J., Carrasco-Medina, L., Hodgins, D., & Shewen, P. (2007). Mannheimia haemolytica– and Pasteurella multocida–Induced Bovine Pneumonia. Food Animal Practice, 8(2), 117-28. doi:10.1017/S1466252307001375 [19] Mannheimia haemolytica. (2012, July 18). Retrieved August, 2015, from https://en.wikivet.net/Mannheimia_haemolytica </p><p> [11] Farmer, J.J., Sheth, N., Hudzinski, J., Rose, Harold. Asbury, M. (1982). Bacteremia due to Leptotrichia trevisanii sp. nov. European Journal of Clinical Microbiology & Infectious Diseases, 16(4), 775-778. Retrieved August. 2015, from http://www.ncbi.nlm.nih.gov/pmc/articles/PMC272471/ </p><p> [12] Darby, A., Lertpiriyapong, K., Sarkar, U., Seneviratne, U., Park, D., Gamazon, E., . . . Fox, J. (2014). Cytotoxic and Pathogenic Properties of Klebsiella oxytoca Isolated from Laboratory Animals. PLoS ONE. doi:10.1371/journal.pone.0100542</p><p> [13] Sorokin, D. (2005). Thioclava pacifica gen. nov., sp. nov., a novel facultatively autotrophic, marine, sulfur-oxidizing bacterium from a near-shore sulfidic hydrothermal area. International Journal Of Systematic And Evolutionary Microbiology, 1069-1075. Retrieved August 1, 2015, from http://www.ncbi.nlm.nih.gov/pubmed/15879235 </p><p> [14] Escherichia coli. (2014, November 13). Retrieved September 15, 2015, from https://microbewiki.kenyon.edu/index.php/Escherichia_coli</p><p> [15] Howard, A., O’Donoghue, M., Feeney, A., & Sleator, R. (2012, May 1). Acinetobacter baumannii: An emerging opportunistic pathogen. Retrieved August 1, 2015. [ ] Rice, L. (2008). Federal Funding for the Study of Antimicrobial Resistance in Nosocomial Pathogens: No ESKAPE. The Journal of Infectious Diseases J INFECT DIS, 197(8), 1079-1081. </p><p> [16] Escherichia coli. (2015). Retrieved August 1, 2015, from https://microbewiki.kenyon.edu/index.php/Escherichia_coli </p><p> [17] Psychrobacter. (2015). Retrieved September 15, 2015, from https://microbewiki.kenyon.edu/index.php/Psychrobacter </p><p> [18] Van Haute, G. (2003, August 1). Agrobacterium tumefaciens. Retrieved August 1, 2015, from http://users.skynet.be/albert.de.koning/agrobacterium.pdf. </p><p> [19] Lai, Q., Liu, Y., Yuan, J., Du, J., Wang, L., Sun, F., & Shao, Z. (2014). Multilocus Sequence Analysis for Assessment of Phylogenetic Diversity and Biogeography in Thalassospira Bacteria from Diverse Marine Environments. Third Institute of Oceanography State Oceanic Administration, 9(9), 1-11. doi:e106353 </p><p> [20] Johnson, K. (2015). Fire blight of apple and pear. Retrieved August 1, 2015, from http://www.apsnet.org/edcenter/intropp/lessons/prokaryotes/Pages/FireBlight.aspx </p><p> [21] Rossmann, S., Wilson, P., Hicks, J., Carter, B., Cron, S., Simon, C., . . . Kline, M. (1998, June 1). Isolation of Lautropia mirabilis from Oral Cavities of Human Immunodeficiency Virus-Infected Children. Retrieved September 15, 2015.</p> | <p>[1] Garcia, L., & Molineux, I. (1995). Rate of translocation of bacteriophage T7 DNA across the membranes of Escherichia coli. Journal of Bacteriology, 177(14), 4066-4076.</p><p> [2] Stelzmueller, I., Biebl, M., Wiesmayr, S., Eller, M., Hoeller, E., Fille, M., Weiss, G., Lass-Floerl, C. and Bonatti, H. (2006), Ralstonia pickettii—innocent bystander or a potential threat?. Clinical Microbiology and Infection, 12: 99–101. </p><p> [3] Kittichotirat, W., Good, N., Hall, R., Bringel, F., Lajus, A., Medigue, C., . . . Kalyuzhnaya, M. (2011). Genome Sequence of Methyloversatilis universalis FAM5T, a Methylotrophic Representative of the Order Rhodocyclales. Journal of Bacteriology, 193(17), 4541-4542. doi:10.1128/JB.05331-11 </p><p> [4] Boudon, S., Manceau, C., & Nottéghem, J. (2005). Structure and Origin of Xanthomonas arboricola pv. pruni Populations Causing Bacterial Spot of Stone Fruit Trees in Western Europe. Phytopathology, 95(9), 1081-1088. </p><p> [5] Gai, Z., Wang, X., Tang, H., Tai, C., Tao, F., Wu, G., & Xu, P. (2011). Genome Sequence of Sphingobium yanoikuyae XLDN2-5, an Efficient Carbazole-Degrading Strain. Journal of Bacteriology, 193(22), 6404-6405. doi:10.1128/JB.06050-11 </p><p> [6] Kersters, K., Hinz, K., Hertle, A., Segers, P., Lievens, A., Siegmann, O., & Ley, J. (1984). Bordetella avium sp. nov., Isolated from the Respiratory Tracts of Turkeys and Other Birds. International Journal of Systematic Bacteriology, 34(1), 56-70. doi:10.1099/00207713-34-1-56 </p><p> [7] Holguin, G., Patten, C., & Glick, B. (1999). Genetics and molecular biology of Azospirillum. Biology and Fertility of Soils, 29(1), 10-23. doi:10.1007/s003740050519 </p><p> [8] Stehr-Green, J. K., Centers for Disease Control and Prevention, & National Institutes of Health. (2000). Foodborne disease outbreak investigation: epidemiologic case studies. In Foodborne disease outbreak investigation: epidemiologic case studies. Department of Health & Human Services. </p><p> [9] Enterobacter aerogenes. (2011, April 22). Retrieved August 1, 2015, from https://microbewiki.kenyon.edu/index.php/Enterobacter_aerogenes </p><p> [10] Rice, J., Carrasco-Medina, L., Hodgins, D., & Shewen, P. (2007). Mannheimia haemolytica– and Pasteurella multocida–Induced Bovine Pneumonia. Food Animal Practice, 8(2), 117-28. doi:10.1017/S1466252307001375 [19] Mannheimia haemolytica. (2012, July 18). Retrieved August, 2015, from https://en.wikivet.net/Mannheimia_haemolytica </p><p> [11] Farmer, J.J., Sheth, N., Hudzinski, J., Rose, Harold. Asbury, M. (1982). Bacteremia due to Leptotrichia trevisanii sp. nov. European Journal of Clinical Microbiology & Infectious Diseases, 16(4), 775-778. Retrieved August. 2015, from http://www.ncbi.nlm.nih.gov/pmc/articles/PMC272471/ </p><p> [12] Darby, A., Lertpiriyapong, K., Sarkar, U., Seneviratne, U., Park, D., Gamazon, E., . . . Fox, J. (2014). Cytotoxic and Pathogenic Properties of Klebsiella oxytoca Isolated from Laboratory Animals. PLoS ONE. doi:10.1371/journal.pone.0100542</p><p> [13] Sorokin, D. (2005). Thioclava pacifica gen. nov., sp. nov., a novel facultatively autotrophic, marine, sulfur-oxidizing bacterium from a near-shore sulfidic hydrothermal area. International Journal Of Systematic And Evolutionary Microbiology, 1069-1075. Retrieved August 1, 2015, from http://www.ncbi.nlm.nih.gov/pubmed/15879235 </p><p> [14] Escherichia coli. (2014, November 13). Retrieved September 15, 2015, from https://microbewiki.kenyon.edu/index.php/Escherichia_coli</p><p> [15] Howard, A., O’Donoghue, M., Feeney, A., & Sleator, R. (2012, May 1). Acinetobacter baumannii: An emerging opportunistic pathogen. Retrieved August 1, 2015. [ ] Rice, L. (2008). Federal Funding for the Study of Antimicrobial Resistance in Nosocomial Pathogens: No ESKAPE. The Journal of Infectious Diseases J INFECT DIS, 197(8), 1079-1081. </p><p> [16] Escherichia coli. (2015). Retrieved August 1, 2015, from https://microbewiki.kenyon.edu/index.php/Escherichia_coli </p><p> [17] Psychrobacter. (2015). Retrieved September 15, 2015, from https://microbewiki.kenyon.edu/index.php/Psychrobacter </p><p> [18] Van Haute, G. (2003, August 1). Agrobacterium tumefaciens. Retrieved August 1, 2015, from http://users.skynet.be/albert.de.koning/agrobacterium.pdf. </p><p> [19] Lai, Q., Liu, Y., Yuan, J., Du, J., Wang, L., Sun, F., & Shao, Z. (2014). Multilocus Sequence Analysis for Assessment of Phylogenetic Diversity and Biogeography in Thalassospira Bacteria from Diverse Marine Environments. Third Institute of Oceanography State Oceanic Administration, 9(9), 1-11. doi:e106353 </p><p> [20] Johnson, K. (2015). Fire blight of apple and pear. Retrieved August 1, 2015, from http://www.apsnet.org/edcenter/intropp/lessons/prokaryotes/Pages/FireBlight.aspx </p><p> [21] Rossmann, S., Wilson, P., Hicks, J., Carter, B., Cron, S., Simon, C., . . . Kline, M. (1998, June 1). Isolation of Lautropia mirabilis from Oral Cavities of Human Immunodeficiency Virus-Infected Children. Retrieved September 15, 2015.</p> |
Revision as of 20:01, 18 September 2015