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Adaptation to Fe-deficiency requires remodeling of the photosynthetic apparatus

机译:适应铁缺乏症需要光合作用设备的重塑

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摘要

The molecular mechanisms underlying the onset of Fe-deficiency chlorosis and the maintenance of photosynthetic function in chlorotic chloroplasts are relevant to global photosynthetic productivity. We describe a series of graded responses of the photosynthetic apparatus to Fe-deficiency, including a novel response that occurs prior to the onset of chlorosis, namely the disconnection of the LHCI antenna from photosystem I (PSI). We propose that disconnection is mediated by a change in the physical properties of PSI-K in PSI in response to a change in plastid Fe content, which is sensed through the occupancy, and hence activity, of the Fe-containing active site in Crd1. We show further that progression of the response involves remodeling of the antenna complexes—specific degradation of existing proteins coupled to the synthesis of new ones, and establishment of a new steady state with decreased stoichiometry of electron transfer complexes. We suggest that these responses are typical of a dynamic photosynthetic apparatus where photosynthetic function is optimized and photooxidative damage is minimized in graduated responses to a combination of nutrients, light quantity and quality.
机译:缺铁性叶绿素的发作和维持叶绿体叶绿体中光合功能的分子机制与全球光合生产力相关。我们描述了光合装置对铁缺乏的一系列分级响应,包括在萎黄病发作之前发生的新型响应,即LHCI天线与光系统I(PSI)的断开连接。我们建议断开连接是由PSI中PSI-K的物理特性的变化所介导的,该变化是通过响应质体中Fe含量的变化以及Crd1中含Fe活性位点的活性而感知的。我们进一步表明,反应的进展涉及天线复合物的重塑-现有蛋白质的特异性降解,再加上新蛋白质的合成,以及建立具有降低的电子传递复合物化学计量的新稳态。我们建议这些响应是动态光合作用装置的典型特征,其中光合功能得到优化,并且在对养分,光量和质量的组合进行的分级响应中,光氧化损伤最小。

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