Difference between revisions of "Team:NYMU-Taipei/Pigments"

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<li>Pei-Hong Chen, Hsien-Lin Liu, Yin-Ju Chen, Yi-Hsiang Cheng, Wei-Ling Lin, Chien-Hung Yeh and Chuan-Hsiung Chang. (2012). Enhancing CO2 bio-mitigation by genetic engineering of cyanobacteria. <i>Energy Environ. Sci., 2012,5,</i> 8318-8327.
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<li>Alexander O. Brachmann, Ferdinand Kirchner, Carsten Kegler, Sebastian C. Kinski, Imke Schmitt, and Helge B. Bode. (2011). Triggering the production of the cryptic blue pigment indigoidine from <i>Photorhabdus luminescens</i>. <i>Journal of Biotechnology, 157,</i> 96-99.
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<li>Xu, F., Gage, D., and Zhan, J. (2015). Efficient production of indigoidine in <i>Escherichia coli</i>. <i>Journal of Industrial Microbiology & Biotechnology, 42,</i> 1149–1155.
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<li>2013 Team: Heidelberg <a href='https://2013.igem.org/Team:Heidelberg/Project/Indigoidine'>(https://2013.igem.org/Team:Heidelberg/Project/Indigoidine)</a>
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<li>2009 Team: Tokyo Tech <a href='https://2009.igem.org/Team:Tokyo_Tech'>(https://2009.igem.org/Team:Tokyo_Tech)
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<li>Nadja A. Henke, Sabine A. E. Heider, Petra Peters-Wendisch and Volker F. Wendisch. (2016). Production of the Marine Carotenoid Astaxanthin by Metabolically Engineered <i>Corynebacterium glutamicum</i>. <i>Marine drug, 14(7): 124.</i>
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<li>Chengwei Liang, Fangqing Zhao, Wei Wei, Zhangxiao Wen, Song Qin. (2006). Carotenoid Biosynthesis in Cyanobacteria: Structural and Evolutionary Scenarios Based on Comparative Genomics. <i>Int. J. Biol. Sci., 2006, 2.</i>
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<li>Miller, E. S., Mackinney, G., & Zscheile, F. P. (1935). Absorption Spectra of Alpha and Beta Carotenes And Lycopene. <i>Plant Physiology, 10</i>(2), 375–381.
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<li>David Heber, Qing-Yi Lu (2002). Overview of Mechanisms of Action of Lycopene. <i>Experimental Biology and Medicine, 227(10)</i>, 920 – 923.
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<li>Cunningham, F. X., Sun, Z., Chamovitz, D., Hirschberg, J., & Gantt, E. (1994). Molecular structure and enzymatic function of lycopene cyclase from the cyanobacterium <i>Synechococcus</i> sp strain PCC7942. <i>The Plant Cell, 6</i>(8), 1107–1121.
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<li>Jacobus, A. P., & Gross, J. (2015). Optimal Cloning of PCR Fragments by Homologous Recombination in <i>Escherichia coli</i>. <i>PLoS ONE, 10</i>(3), e0119221.
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Revision as of 12:16, 25 October 2017

Pigments

  In our project, we transfer five types of pigment-related gene sequence (Indigoidine, Zeaxanthin, Melanin, Astaxanthin and Lycopene) into our cyanobacteria. We expect to get five different colors of microalgae, so we could see whether changing the original color of microalgae would change wavelength absorbance and have better photosynthetic efficiencies. Due to better photosynthetic efficiencies, we could elevate oil accumulation in microalgae, which would have great benefit in both industry and scientific usage.