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Light Intensity-Dependent Modulation of Chlorophyll b Biosynthesis and Photosynthesis by Overexpression of Chlorophyllide a Oxygenase in Tobacco1[C][OA]

机译:叶绿素b氧化酶在烟草中的过表达对光合作用和光合作用的叶绿素b的光强度调节[C] [OA]

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摘要

Chlorophyll b is synthesized by the oxidation of a methyl group on the B ring of a tetrapyrrole molecule to a formyl group by chlorophyllide a oxygenase (CAO). The full-length CAO from Arabidopsis (Arabidopsis thaliana) was overexpressed in tobacco (Nicotiana tabacum) that grows well at light intensities much higher than those tolerated by Arabidopsis. This resulted in an increased synthesis of glutamate semialdehyde, 5-aminolevulinic acid, magnesium-porphyrins, and chlorophylls. Overexpression of CAO resulted in increased chlorophyll b synthesis and a decreased chlorophyll a/b ratio in low light-grown as well as high light-grown tobacco plants; this effect, however, was more pronounced in high light. The increased potential of the protochlorophyllide oxidoreductase activity and chlorophyll biosynthesis compensated for the usual loss of chlorophylls in high light. Increased chlorophyll b synthesis in CAO-overexpressed plants was accompanied not only by an increased abundance of light-harvesting chlorophyll proteins but also of other proteins of the electron transport chain, which led to an increase in the capture of light as well as enhanced (40%–80%) electron transport rates of photosystems I and II at both limiting and saturating light intensities. Although the quantum yield of carbon dioxide fixation remained unchanged, the light-saturated photosynthetic carbon assimilation, starch content, and dry matter accumulation increased in CAO-overexpressed plants grown in both low- and high-light regimes. These results demonstrate that controlled up-regulation of chlorophyll b biosynthesis comodulates the expression of several thylakoid membrane proteins that increase both the antenna size and the electron transport rates and enhance carbon dioxide assimilation, starch content, and dry matter accumulation.
机译:叶绿素b是通过叶绿素加氧酶(CAO)将四吡咯分子B环上的甲基氧化为甲酰基而合成的。拟南芥(Arabidopsis thaliana)的全长CAO在烟草(Nicotiana tabacum)中过表达,该烟草在光强度比拟南芥耐受的光强度高得多的情况下生长良好。这导致谷氨酸半醛,5-氨基乙酰丙酸,镁卟啉和叶绿素的合成增加。在低光生和高光生烟草植物中,CAO的过量表达导致叶绿素b的合成增加,叶绿素a / b的比例降低;但是,这种效果在强光下更为明显。原叶绿素内酯氧化还原酶活性和叶绿素生物合成潜力的增加弥补了高光下叶绿素的通常损失。在过度表达CAO的植物中叶绿素b合成的增加不仅伴随着光捕获叶绿素蛋白质的丰度增加,而且电子传输链的其他蛋白质的丰度也随之增加,从而导致光捕获的增加以及增强(40在限制和饱和光强度下,光系统I和II的电子传输速率为%–80%。尽管二氧化碳固定的量子产率保持不变,但在低光和高光条件下生长的过表达CAO的植物的光饱和光合碳同化,淀粉含量和干物质积累均增加。这些结果表明,叶绿素b生物合成的受控上调可共调节几种类囊体膜蛋白的表达,从而增加触角大小和电子传输速率,并增强二氧化碳同化作用,淀粉含量和干物质积累。

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