Line 131: | Line 131: | ||
<p> | <p> | ||
− | Moreno-Sánchez, R., Saavedra, E., Rodríguez-Enríquez, S. and Olín-Sandoval, V. 2008. Metabolic Control Analysis: A Tool for Designing Strategies to Manipulate Metabolic Pathways. <em>Journal of Biomedicine and Biotechnology</em>, 2008, pp.1-30. | + | 1. Moreno-Sánchez, R., Saavedra, E., Rodríguez-Enríquez, S. and Olín-Sandoval, V. 2008. Metabolic Control Analysis: A Tool for Designing Strategies to Manipulate Metabolic Pathways. <em>Journal of Biomedicine and Biotechnology</em>, 2008, pp.1-30. |
</p> | </p> | ||
<p> | <p> | ||
− | Srirangan, K., Liu, X., Tran, T., Charles, T., Moo-Young, M. and Chou, C. 2016. Engineering of Escherichia coli for direct and modulated biosynthesis of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) copolymer using unrelated carbon sources. <em>Scientific Reports</em>, 6(1). | + | 2. Srirangan, K., Liu, X., Tran, T., Charles, T., Moo-Young, M. and Chou, C. 2016. Engineering of Escherichia coli for direct and modulated biosynthesis of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) copolymer using unrelated carbon sources. <em>Scientific Reports</em>, 6(1). |
</p> | </p> | ||
<p> | <p> | ||
− | Gonzalez-Garcia, R., McCubbin, T., Wille, A., Plan, M., Nielsen, L. and Marcellin, E. 2017. Awakening sleeping beauty: production of propionic acid in Escherichia coli through the sbm operon requires the activity of a methylmalonyl-CoA epimerase. <em>Microbial Cell Factories</em>, 16(1). | + | 3. Gonzalez-Garcia, R., McCubbin, T., Wille, A., Plan, M., Nielsen, L. and Marcellin, E. 2017. Awakening sleeping beauty: production of propionic acid in Escherichia coli through the sbm operon requires the activity of a methylmalonyl-CoA epimerase. <em>Microbial Cell Factories</em>, 16(1). |
</p> | </p> | ||
<p> | <p> | ||
− | Horng, Y., Chien, C., Huang, C., Wei, Y., Chen, S., Lan, J. and Soo, P. (2013). Biosynthesis of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) with co-expressed propionate permease (prpP), beta-ketothiolase B (bktB), and propionate-CoA synthase (prpE) in Escherichia coli. <em>Biochemical Engineering Journal</em>, 78, pp.73-79. | + | 4. Horng, Y., Chien, C., Huang, C., Wei, Y., Chen, S., Lan, J. and Soo, P. (2013). Biosynthesis of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) with co-expressed propionate permease (prpP), beta-ketothiolase B (bktB), and propionate-CoA synthase (prpE) in Escherichia coli. <em>Biochemical Engineering Journal</em>, 78, pp.73-79. |
</p> | </p> | ||
<p id="cobra"> | <p id="cobra"> | ||
− | Hiroe, A., Tsuge, K., Nomura, C.T., Itaya, M. and Tsuge, T., 2012. Rearrangement of gene order in the phaCAB operon leads to effective production of ultra-high-molecular-weight poly [(R)-3-hydroxybutyrate] in genetically engineered Escherichia coli. <em>Applied and environmental microbiology</em>, pp.AEM-07715. | + | 5. Hiroe, A., Tsuge, K., Nomura, C.T., Itaya, M. and Tsuge, T., 2012. Rearrangement of gene order in the phaCAB operon leads to effective production of ultra-high-molecular-weight poly [(R)-3-hydroxybutyrate] in genetically engineered Escherichia coli. <em>Applied and environmental microbiology</em>, pp.AEM-07715. |
</p> | </p> | ||
<p> | <p> | ||
− | Imperial, S. and Centelles, J. 2014. Enzyme Kinetic Equations of Irreversible and Reversible Reactions in Metabolism. <em>Journal of Biosciences and Medicines</em>, 02(04), pp.24-29. | + | 6. Imperial, S. and Centelles, J. 2014. Enzyme Kinetic Equations of Irreversible and Reversible Reactions in Metabolism. <em>Journal of Biosciences and Medicines</em>, 02(04), pp.24-29. |
</p> | </p> | ||
<p> | <p> | ||
− | Cornish-Bowden, A. 1993. Enzyme specificity in reactions of more than one co-substrate. <em>Biochemical Journal</em>, 291(1), pp.323.2-324. | + | 7. Cornish-Bowden, A. 1993. Enzyme specificity in reactions of more than one co-substrate. <em>Biochemical Journal</em>, 291(1), pp.323.2-324. |
</p> | </p> | ||
<p> | <p> | ||
− | Anjum, A., Zuber, M., Zia, K., Noreen, A., Anjum, M. and Tabasum, S. 2016. Microbial production of polyhydroxyalkanoates (PHAs) and its copolymers: A review of recent advancements. <em>International Journal of Biological Macromolecules</em>, 89, pp.161-174. | + | 8. Anjum, A., Zuber, M., Zia, K., Noreen, A., Anjum, M. and Tabasum, S. 2016. Microbial production of polyhydroxyalkanoates (PHAs) and its copolymers: A review of recent advancements. <em>International Journal of Biological Macromolecules</em>, 89, pp.161-174. |
</p> | </p> | ||
Line 262: | Line 262: | ||
<p> | <p> | ||
− | Lewis, N., Nagarajan, H. and Palsson, B. 2012. Constraining the metabolic genotype–phenotype relationship using a phylogeny of in silico methods. <em>Nature Reviews Microbiology</em>, 10(4), pp.291-305. | + | 9. Lewis, N., Nagarajan, H. and Palsson, B. 2012. Constraining the metabolic genotype–phenotype relationship using a phylogeny of in silico methods. <em>Nature Reviews Microbiology</em>, 10(4), pp.291-305. |
</p> | </p> | ||
<p> | <p> | ||
− | García Sánchez, C. and Torres Sáez, R. 2014. Comparison and analysis of objective functions in flux balance analysis. <em>Biotechnology Progress</em>, 30(5), pp.985-991. | + | 10. García Sánchez, C. and Torres Sáez, R. 2014. Comparison and analysis of objective functions in flux balance analysis. <em>Biotechnology Progress</em>, 30(5), pp.985-991. |
</p> | </p> | ||
<p> | <p> | ||
− | Feist, A. and Palsson, B. 2010. The biomass objective function. <em>Current Opinion in Microbiology</em>, 13(3), pp.344-349. | + | 11. Feist, A. and Palsson, B. 2010. The biomass objective function. <em>Current Opinion in Microbiology</em>, 13(3), pp.344-349. |
</p> | </p> | ||
<p> | <p> | ||
− | Orth, J., Thiele, I. and Palsson, B. 2010. What is flux balance analysis?. <em>Nature Biotechnology</em>, 28(3), pp.245-248. | + | 12. Orth, J., Thiele, I. and Palsson, B. 2010. What is flux balance analysis?. <em>Nature Biotechnology</em>, 28(3), pp.245-248. |
</p> | </p> | ||
<p> | <p> | ||
− | Orth, J., Conrad, T., Na, J., Lerman, J., Nam, H., Feist, A. and Palsson, B. 2011. A comprehensive genome-scale reconstruction of Escherichia coli metabolism--2011. <em>Molecular Systems Biology</em>, 7(1), pp.535-535. | + | 13. Orth, J., Conrad, T., Na, J., Lerman, J., Nam, H., Feist, A. and Palsson, B. 2011. A comprehensive genome-scale reconstruction of Escherichia coli metabolism--2011. <em>Molecular Systems Biology</em>, 7(1), pp.535-535. |
</p> | </p> | ||
<p> | <p> | ||
− | Schellenberger, J., Que, R., Fleming, R., Thiele, I., Orth, J., Feist, A., Zielinski, D., Bordbar, A., Lewis, N., Rahmanian, S., Kang, J., Hyduke, D. and Palsson, B. 2011. Quantitative prediction of cellular metabolism with constraint-based models: the COBRA Toolbox v2.0. <em>Nature Protocols</em>, 6(9), pp.1290-1307. | + | 14. Schellenberger, J., Que, R., Fleming, R., Thiele, I., Orth, J., Feist, A., Zielinski, D., Bordbar, A., Lewis, N., Rahmanian, S., Kang, J., Hyduke, D. and Palsson, B. 2011. Quantitative prediction of cellular metabolism with constraint-based models: the COBRA Toolbox v2.0. <em>Nature Protocols</em>, 6(9), pp.1290-1307. |
</p> | </p> | ||
<p> | <p> | ||
− | Bhatia, S., Yi, D., Kim, H., Jeon, J., Kim, Y., Sathiyanarayanan, G., Seo, H., Lee, J., Kim, J., Park, K., Brigham, C. and Yang, Y. 2015. Overexpression of succinyl-CoA synthase for poly (3-hydroxybutyrate-co-3-hydroxyvalerate) production in engineered Escherichia coli BL21(DE3). <em>Journal of Applied Microbiology</em>, 119(3), pp.724-735. | + | 15. Bhatia, S., Yi, D., Kim, H., Jeon, J., Kim, Y., Sathiyanarayanan, G., Seo, H., Lee, J., Kim, J., Park, K., Brigham, C. and Yang, Y. 2015. Overexpression of succinyl-CoA synthase for poly (3-hydroxybutyrate-co-3-hydroxyvalerate) production in engineered Escherichia coli BL21(DE3). <em>Journal of Applied Microbiology</em>, 119(3), pp.724-735. |
</p> | </p> | ||
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Revision as of 19:07, 17 October 2018