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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Thioredoxin-dependent regulatory networks in chloroplasts under fluctuating light conditions
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Thioredoxin-dependent regulatory networks in chloroplasts under fluctuating light conditions

机译:光照条件下叶绿体中硫氧还蛋白依赖性调控网络

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Plants have adopted a number of mechanisms to restore redox homeostasis in the chloroplast under fluctuating light conditions in nature. Chloroplast thioredoxin systems are crucial components of this redox network, mediating environmental signals to chloroplast proteins. In the reduced state, thioredoxins control the structure and function of proteins by reducing disulfide bridges in the redox active site of a protein. Subsequently, an oxidized thioredoxin is reduced by a thioredoxin reductase, the two enzymes together forming a thioredoxin system. Plant chloroplasts have versatile thioredoxin systems, including two reductases dependent on ferredoxin and NADPH as reducing power, respectively, several types of thioredoxins, and the system to deliver thiol redox signals to the thylakoid membrane and lumen. Light controls the activity of chloroplast thioredoxin systems in two ways. First, light reactions activate the thioredoxin systems via donation of electrons to oxidized ferredoxin and NADP~+, and second, light induces production of reactive oxygen species in chloroplasts which deactivate the components of the thiol redox network. The diversity and partial redundancy of chloroplast thioredoxin systems enable chloroplast metabolism to rapidly respond to ever-changing environmental conditions and to raise plant fitness in natural growth conditions.
机译:在自然界中不断变化的光照条件下,植物已经采用了多种机制来恢复叶绿体中的氧化还原稳态。叶绿体硫氧还蛋白系统是该氧化还原网络的关键组成部分,可将环境信号介导至叶绿体蛋白。在还原状态下,硫氧还蛋白通过减少蛋白质氧化还原活性位点的二硫键来控制蛋白质的结构和功能。随后,氧化的硫氧还蛋白被硫氧还蛋白还原酶还原,这两种酶一起形成了硫氧还蛋白系统。植物叶绿体具有通用的硫氧还蛋白系统,包括两种分别依赖于铁氧还蛋白和NADPH作为还原能力的还原酶,几种类型的硫氧还蛋白,以及将硫醇氧化还原信号传递到类囊体膜和管腔的系统。光以两种方式控制叶绿体硫氧还蛋白系统的活性。首先,光反应通过向氧化的铁氧还蛋白和NADP +提供电子来激活硫氧还蛋白系统,其次,光诱导了叶绿体中活性氧的产生,从而使硫醇氧化还原网络的成分失活。叶绿体硫氧还蛋白系统的多样性和部分冗余性使叶绿体代谢能够快速响应不断变化的环境条件,并提高植物在自然生长条件下的适应性。

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