Difference between revisions of "Team:Paris Bettencourt/Bibliography"
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− | <h3>Vitamin A project</h3> | + | <h3>Vitamin A (retinol) project</h3> |
<ul> | <ul> | ||
<li>Li, Q., Sun, Z., Li, J. & Zhang, Y. Enhancing beta-carotene production in Saccharomyces cerevisiae by metabolic engineering. <i>FEMS Microbiology Letters</i> <b>345</b>, 94-101 (2013).</li> | <li>Li, Q., Sun, Z., Li, J. & Zhang, Y. Enhancing beta-carotene production in Saccharomyces cerevisiae by metabolic engineering. <i>FEMS Microbiology Letters</i> <b>345</b>, 94-101 (2013).</li> | ||
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− | <h3> | + | <h3>Vitamin B2 (riboflavin) project:</h3> |
<ul> | <ul> | ||
<li>Indian Council of Medical Research 2009 report</li> | <li>Indian Council of Medical Research 2009 report</li> | ||
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<li>'A synthetic promoter library for constitutive gene expression in <i>Lactobacillus plantarum</i>',I. Rud, Microbiology, 2006</li> | <li>'A synthetic promoter library for constitutive gene expression in <i>Lactobacillus plantarum</i>',I. Rud, Microbiology, 2006</li> | ||
<li>'Direct cloning in <i>Lactobacillus plantarum</i>: Electroporation with non-methylated plasmid DNA enhances transformation efficiency and makes shuttle vectors obsolete', Katharina SpathSpath et al. Microbial Cell Factories 2012, 11:141</li> | <li>'Direct cloning in <i>Lactobacillus plantarum</i>: Electroporation with non-methylated plasmid DNA enhances transformation efficiency and makes shuttle vectors obsolete', Katharina SpathSpath et al. Microbial Cell Factories 2012, 11:141</li> | ||
− | <li>'Repetitive, Marker-Free, Site-Specific Integration as a Novel Tool for Multiple Chromosomal Integration of DNA',Kia Vest Petersen</li> | + | <li>'Repetitive, Marker-Free, Site-Specific Integration as a Novel Tool for Multiple Chromosomal Integration of DNA', Kia Vest Petersen et al., Appl. and Environ. Microbiology, 2013.</li> |
− | <li>'Bacterial vitamin B2, B11 and B12 overproduction: An overview', Catherine M. Burgess</li> | + | <li>'Bacterial vitamin B2, B11 and B12 overproduction: An overview', Catherine M. Burgess et al., Int J Food Microbiology, 2009. </li> |
</ul> | </ul> | ||
<br> | <br> | ||
− | <h3> | + | <h3>Vitamin B12 (cobalamin) project:</h3> |
<ul> | <ul> | ||
<li>"Vitamins in the prevention of human diseases", Wolfgang Herrmann</li> | <li>"Vitamins in the prevention of human diseases", Wolfgang Herrmann</li> | ||
<li>"Vitamin B12 deficiency", Alesia Hunt, BMJ, 2014</li> | <li>"Vitamin B12 deficiency", Alesia Hunt, BMJ, 2014</li> | ||
− | <li>"The total synthesis of vitamin B12" R. B. WOODWARD</li> | + | <li>"The total synthesis of vitamin B12", R. B. WOODWARD</li> |
− | <li>http://www.synarchive.com/syn/71 | + | <li><a href="http://www.synarchive.com/syn/71">SynArchive.com</a></li> |
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<li>"Dietary factors that affect biological availability of trace elements", O'Dell 1972, Ann N Y Acad Sci.</li> | <li>"Dietary factors that affect biological availability of trace elements", O'Dell 1972, Ann N Y Acad Sci.</li> | ||
<li>"Reduction of phytic acid and enhancement of bioavailable micronutrients in food grains". Gupta RK. J Food Sci Technol. 2015 </li> | <li>"Reduction of phytic acid and enhancement of bioavailable micronutrients in food grains". Gupta RK. J Food Sci Technol. 2015 </li> |
Latest revision as of 08:24, 20 November 2015