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− | + | Modeling | |
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biological systems and the working principles while providing ways to improve the system. In our case, it significantly led to the design of our project while improving the part choices. | biological systems and the working principles while providing ways to improve the system. In our case, it significantly led to the design of our project while improving the part choices. | ||
− | In our project we aimed to improve the second generation bioethanol production in which pretreatment process are constructed, from microbial fermentation by increasing the lifespan and productivity of bacteria. In our project, we used E.coli KO11 which is an ethanologenic bacteria thus appropriate for our goal. However, because we designed our gene circuit not just for KO11 but also for other E.coli strains, the | + | In our project we aimed to improve the second generation bioethanol production in which pretreatment process are constructed, from microbial fermentation by increasing the lifespan and productivity of bacteria. In our project, we used E.coli KO11 which is an ethanologenic bacteria thus appropriate for our goal. However, because we designed our gene circuit not just for KO11 but also for other E.coli strains, the modeling was constructed while considering the overall properties of them. While doing so, we used kinetic and visual models to design our gene circuit, calculating the expected behaviours and demonstrating our system. |
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<h4><b>Toxicity Analysis Results:</b></h4> | <h4><b>Toxicity Analysis Results:</b></h4> | ||
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<h5>Enzyme = NADPH Dependent Oxidoreductase:</h5> | <h5>Enzyme = NADPH Dependent Oxidoreductase:</h5> | ||
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<h5>Enzyme = NADH dependent Oxidoreductase:</h5> | <h5>Enzyme = NADH dependent Oxidoreductase:</h5> | ||
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<img class="Resim" src="http://parts.igem.org//wiki/images/thumb/f/f2/METU_HS_Ankara_Lineweaver_FucO.png/800px-METU_HS_Ankara_Lineweaver_FucO.png" /> | <img class="Resim" src="http://parts.igem.org//wiki/images/thumb/f/f2/METU_HS_Ankara_Lineweaver_FucO.png/800px-METU_HS_Ankara_Lineweaver_FucO.png" /> | ||
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<h4><strong>Enzyme Reaction Kinetics of YqhD </strong></h4> | <h4><strong>Enzyme Reaction Kinetics of YqhD </strong></h4> | ||
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<img class="Resim" src="http://parts.igem.org//wiki/images/thumb/b/bf/METU_HS_Ankara_Lineweaver_YqhD.png/800px-METU_HS_Ankara_Lineweaver_YqhD.png" /> | <img class="Resim" src="http://parts.igem.org//wiki/images/thumb/b/bf/METU_HS_Ankara_Lineweaver_YqhD.png/800px-METU_HS_Ankara_Lineweaver_YqhD.png" /> | ||
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<h4><b>Results</b></h4> | <h4><b>Results</b></h4> | ||
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<h5>Glycine + y-glutamyl cysteine + Glutathione Synthetases → Glutathione Synthetase Glutathione</h5> | <h5>Glycine + y-glutamyl cysteine + Glutathione Synthetases → Glutathione Synthetase Glutathione</h5> | ||
<h4> <strong>Glutathione Oxidation and Reduction Pathways</strong></h4> | <h4> <strong>Glutathione Oxidation and Reduction Pathways</strong></h4> | ||
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<div class="col-md-12" style="text-align: center" style="text-align: center"> | <div class="col-md-12" style="text-align: center" style="text-align: center"> | ||
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<h5>Glutathione + ROS → Water + Oxidized Glutathione</h5> | <h5>Glutathione + ROS → Water + Oxidized Glutathione</h5> | ||
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<h4><b> Reaction Kinetics </b></h4> | <h4><b> Reaction Kinetics </b></h4> | ||
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<h4 style="padding: 20px;"><b> RBS Analysis </b></h4> | <h4 style="padding: 20px;"><b> RBS Analysis </b></h4> | ||
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<h4><b> Decision </b></h4> | <h4><b> Decision </b></h4> | ||
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− | <h4> Result </h4> | + | <div style="clear: both"></div> |
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<i class="parts-info"> | <i class="parts-info"> | ||
− | Figure 18: Fermentation kinetic model that is redesigned by our experimental data for E.coli KO11 with GSH gene inserted. | + | Figure 18: Fermentation kinetic model that is redesigned by our experimental data for E.coli KO11 with both GSH and FucO gene inserted. |
</i> | </i> | ||
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− | <h4> Result:</h4> | + | <div style="clear: both"></div> |
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+ | <h4> <b> Result: </b> </h4> | ||
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.Resim{ | .Resim{ | ||
text-align: center; | text-align: center; | ||
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height: 90%; | height: 90%; | ||
} | } | ||
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<div class="container"> | <div class="container"> | ||
<div class="row"> | <div class="row"> | ||
− | <div class="col-md-12 | + | <div class="col-md-12"> |
<div class="panel-group" id="accordion"> | <div class="panel-group" id="accordion"> | ||
<div class="panel panel-default"> | <div class="panel panel-default"> | ||
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− | Jez, J.M., Cahoon, R.E. (2004). Kinetic mechanism of glutathione synthetase from Arabidopsis thaliana. J Biol Chem. 279(41), 42726-42731. doi: 10.1074/jbc.M407961200 | + | Jez, J.M., Cahoon, R.E. (2004). Kinetic mechanism of glutathione synthetase from Arabidopsis thaliana. J Biol Chem. 279(41), 42726-42731. doi: <a href="https://doi.org/10.1074/jbc.M407961200">10.1074/jbc.M407961200</a> |
</li> | </li> | ||
<li> | <li> | ||
− | Jarboe, L. R., Liu, P., Kautharapu, K. B., & Ingram, L. O. (2012). Optimization of enzyme parameters for fermentative production of biorenewable fuels and chemicals. Computational and Structural Biotechnology Journal, 3, e201210005. http://doi.org/10.5936/csbj.201210005 | + | Jarboe, L. R., Liu, P., Kautharapu, K. B., & Ingram, L. O. (2012). Optimization of enzyme parameters for fermentative production of biorenewable fuels and chemicals. Computational and Structural Biotechnology Journal, 3, e201210005. <a href = "https://www.sciencedirect.com/science/article/pii/S2001037014600611?via%3Dihub"> http://doi.org/10.5936/csbj.201210005 </a> |
</li> | </li> | ||
<li> | <li> | ||
− | Kim, D., & Hahn, J.,S. (2013). Roles of the Yap1 Transcription Factor and Antioxidants in Saccharomyces cerevisiae’s Tolerance to Furfural and 5-Hydroxymethylfurfural, Which Function as Thiol-Reactive Electrophiles Generating Oxidative Stress. Applied and Environmental Microbiology, 79(16), 5069–5077. http://doi.org/10.1128/AEM.00643-13 | + | Kim, D., & Hahn, J.,S. (2013). Roles of the Yap1 Transcription Factor and Antioxidants in Saccharomyces cerevisiae’s Tolerance to Furfural and 5-Hydroxymethylfurfural, Which Function as Thiol-Reactive Electrophiles Generating Oxidative Stress. Applied and Environmental Microbiology, 79(16), 5069–5077. <a href = "https://aem.asm.org/content/79/16/5069"> http://doi.org/10.1128/AEM.00643-13 </a> |
</li> | </li> | ||
<li> | <li> | ||
− | Olsson, L., Hagerdalt, B. & Zacchi, G. (1995). Kinetics of ethanol production by recombinant Escherichia coli KO11. Biotechnol Bioeng, 20;45(4) ,356-65. doi: 10.1002/bit.260450410 | + | Olsson, L., Hagerdalt, B. & Zacchi, G. (1995). Kinetics of ethanol production by recombinant Escherichia coli KO11. Biotechnol Bioeng, 20;45(4) ,356-65. doi: <a href = "https://onlinelibrary.wiley.com/doi/abs/10.1002/bit.260450410"> 10.1002/bit.260450410 </a> |
</li> | </li> |
Latest revision as of 21:55, 17 October 2018