Team:UESTC-China/Design
From 2014.igem.org
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- | Stomata are microscopic pores surrounded by two guard cells and play an important role in the uptake of CO2 for photosynthesis. Recent researches revealed that light-induced stomatal opening is mediated by at least three key components: blue light receptor phototropin, plasma membrane H+-ATPase, and plasma membrane inward-rectifying K+ channels. However, Wang et al (2014) showed that only increasing the amount of H+-ATPase in guard cells had a significant effect on light-induced stomatal opening (Fig. 4). Transgenic Arabidopsis plants by overexpressing H+-ATPase in guard cells exhibited enhanced photosynthesis activity and plant growth. Therefore,in order to strengthen the ability of absorbing formaldehyde, we overexpressed H+-ATPase (AtAHA2) in transgenic tobacco guard cells,resulting in a significant effect on light-induced stomatal opening. | + | Stomata are microscopic pores surrounded by two guard cells and play an important role in the uptake of CO2 for photosynthesis. Recent researches revealed that light-induced stomatal opening is mediated by at least three key components: blue light receptor phototropin, plasma membrane H+-ATPase, and plasma membrane inward-rectifying K+ channels. However, Wang et al (2014) showed that only increasing the amount of H+-ATPase in guard cells had a significant effect on light-induced stomatal opening (Fig. 4). Transgenic Arabidopsis plants by overexpressing H+-ATPase in guard cells exhibited enhanced photosynthesis activity and plant growth. Therefore, in order to strengthen the ability of absorbing formaldehyde, we overexpressed H+-ATPase (<i>AtAHA2</i>) in transgenic tobacco guard cells, resulting in a significant effect on light-induced stomatal opening. |
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<div align="center"><img style="width:40% ;" src="https://static.igem.org/mediawiki/2014/c/c8/Stoma.png"> | <div align="center"><img style="width:40% ;" src="https://static.igem.org/mediawiki/2014/c/c8/Stoma.png"> | ||
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<div align="center"><img style="width:50% ;" src="https://static.igem.org/mediawiki/2014/1/1c/New_fig5.png"> | <div align="center"><img style="width:50% ;" src="https://static.igem.org/mediawiki/2014/1/1c/New_fig5.png"> | ||
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- | <strong>Fig.5</strong> Pollen germination of untransformed control plant and sterile transgenic | + | <strong>Fig.5</strong> Pollen germination of untransformed control plant and sterile transgenic plants <i>in vitro</i>. Pollen grains were germinated on sucrose-boric acid medium and over 500 pollen grains were observed. a. Untansformed control plant pollen, b. Sterile pollen.Scale bar 25 μm (<i>Shukla et al., 2014</i>). |
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Revision as of 13:39, 17 October 2014