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FtsHi5 功能障碍影响拟南芥的细胞氧化还原平衡和光呼吸代谢。

Impairment of FtsHi5 Function Affects Cellular Redox Balance and Photorespiratory Metabolism in Arabidopsis.

机构信息

College of Life Sciences, South China Agricultural University, Guangzhou, China.

Southern Regional Collaborative Innovation Center for Grain and Oil Crops in China, Hunan Agricultural University, Changsha, China.

出版信息

Plant Cell Physiol. 2018 Dec 1;59(12):2526-2535. doi: 10.1093/pcp/pcy174.

Abstract

Photorespiration is an essential process for plant photosynthesis, development and growth in aerobic conditions. Recent studies have shown that photorespiration is an open system integrated with the plant primary metabolism network and intracellular redox systems, though the mechanisms of regulating photorespiration are far from clear. Through a forward genetic method, we identified a photorespiratory mutant pr1 (photorespiratory related 1), which produced a chlorotic and smaller photorespiratory growth phenotype with decreased chlorophyll content and accumulation of glycine and serine in ambient air. Morphological and physiological defects in pr1 plants can be largely abolished under elevated CO2 conditions. Genetic mapping and complementation confirmed that PR1 encodes an FtsH (Filamentation temperature-sensitive H)-like protein, FtsHi5. Reduced FtsHi5 expression in DEX-induced RNAi transgenic plants produced a similar growth phenotype with pr1 (ftsHi5-1). Transcriptome analysis suggested a changed expression pattern of redox-related genes and an increased expression of senescence-related genes in DEX: RNAi-FtsHi5 seedlings. Together with the observation that decreased accumulation of D1 and D2 proteins of photosystem II (PSII) and over-accumulation of reactive oxygen species (ROS) in ftsHi5 mutants, we hypothesize that FtsHi5 functions in maintaining the cellular redox balance and thus regulates photorespiratory metabolism.

摘要

光合作用是植物在有氧条件下进行光合作用、发育和生长的必要过程。最近的研究表明,光合作用是一个与植物初级代谢网络和细胞内氧化还原系统相集成的开放系统,尽管调节光合作用的机制还远不清楚。通过正向遗传学方法,我们鉴定了一个光合作用突变体 pr1(与光合作用相关 1),其表现出叶绿体和较小的光合作用生长表型,叶绿素含量降低,甘氨酸和丝氨酸在空气中积累。在高浓度 CO2 条件下,pr1 植物的形态和生理缺陷可得到很大程度的消除。遗传图谱和互补实验证实,PR1 编码一个 FtsH(丝状温度敏感 H)样蛋白,FtsHi5。DEX 诱导的 RNAi 转基因植物中 FtsHi5 表达减少,产生与 pr1 相似的生长表型(ftsHi5-1)。转录组分析表明,DEX:RNAi-FtsHi5 幼苗中氧化还原相关基因的表达模式发生变化,衰老相关基因的表达增加。此外,我们还观察到 PSII 的 D1 和 D2 蛋白积累减少,活性氧(ROS)过度积累,因此我们假设 FtsHi5 可在维持细胞氧化还原平衡方面发挥作用,从而调节光合作用代谢。

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