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

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<p>  pPIGBACK-CrtZ is transformed into <i>Synechoccocus elongatus</i> PCC7942 after 20 days cultivation, the transformants electrophoresis result is showed below. Transformation efficiency of pPIGBACK-CrtZ is 11.4 transformants per μg DNA, and correctness is 52% (10/19), which is relatively high compared to low successful rate of gene recombination.</p>
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<p>  pPIGBACK-CrtZ is transformed into <i>Synechoccocus elongatus</i> PCC7942 after 20 days cultivation, the transformants electrophoresis result is showed below. <font class='mark_backbone'>Transformation efficiency</font> of pPIGBACK-CrtZ is 11.4 transformants per μg DNA, and correctness is 52% (10/19), which is relatively high compared to low successful rate of gene recombination.</p>
<p>  Therefore, we can conclude that pPIGBACK is quite a reliable vector which could finish gene double-crossover homologous recombination in <i>S. elongates</i> PCC 7942 genome, because the successful rate of gene double-crossingover homologous recombination is low in cyanobacteria. Moreover, compare pPIGBACK-CrtZ transformants with wild type, we can assure that pPIGBACK could be express in <i>S. elongates</i> PCC 7942, which is such a milestone in our project. With the high correctness of pPIGBACK-CrtZ transformants, we have the confidence that multiple colors of cyanobacteria is possible and could be functional in the near future.</p>
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<p>  Therefore, we can conclude that pPIGBACK is quite a reliable vector which could finish gene double-crossover homologous recombination in <i>S. elongates</i> PCC 7942 genome, because the successful rate of gene double-crossingover homologous recombination is low in cyanobacteria. Moreover, compare pPIGBACK-CrtZ transformants with wild type, we can assure that pPIGBACK could be express in <i>S. elongates</i> PCC 7942, which is such a milestone in our project. With <font class='mark_backbone'>the high correctness of pPIGBACK-CrtZ transformants</font>, we have the confidence that multiple colors of cyanobacteria is possible and could be functional in the near future.</p>
 
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Revision as of 18:02, 26 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.