首页> 美国卫生研究院文献>Plant Physiology >Recovery from Photoinhibition in Peas (Pisum sativum L.) Acclimated to Varying Growth Irradiances (Role of D1 Protein Turnover).
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Recovery from Photoinhibition in Peas (Pisum sativum L.) Acclimated to Varying Growth Irradiances (Role of D1 Protein Turnover).

机译:从豌豆(Pisum sativum L.)的光抑制中恢复以适应变化的生长辐照度(D1蛋白周转率)。

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摘要

D1 protein turnover and restoration of the photochemical efficiency of photosystem II (PSII) after photoinhibition of pea leaves (Pisum sativum L. cv Greenfeast) acclimated to different light intensities were investigated. All peas acclimated to different light intensities were able to recover from photoinhibition, at least partially, at light intensities far above their growth light irradiance. However, the capacity of pea leaves to recover from photoinhibition under increasing high irradiances was strictly dependent on the light acclimation of the leaves; i.e. the higher the irradiance during growth, the better the capacity of pea leaves to recover from photoinhibition at moderate and high light. In our experimental conditions, mainly D1 protein turnover-dependent recovery was monitored, since in the presence of an inhibitor of chloroplast-encoded protein synthesis, lincomycin, only negligible recovery took place. In darkness, neither the restoration of PSII photochemical efficiency nor any notable degradation of damaged D1 protein took place. In low light, however, good recovery of PSII occurred in all peas acclimated to different light intensities and was accompanied by fast degradation of the D1 protein. The rate of degradation of the D1 protein was estimated to be 3 to 4 times faster in photoinhibited leaves than in nonphotoinhibited leaves under the recovery conditions of 50 [mu]mol of photons m-2 s-1. In moderate light of 400 [mu]mol of photons m-2 s-1, the photoinhibited low-light peas were not able to increase further the rate of D1 protein degradation above that observed in nonphotoinhibited leaves, nor was the restoration of PSII function possible. On the other hand, photoinhibited high-light leaves were able to increase the rate of D1 protein degradation above that of nonphotoinhibited leaves even in moderate and high light, ensuring at least partial restoration of PSII function. We conclude that the capacity of photoinhibited leaves to restore PSII function at different irradiances was directly related to the capacity of the leaves to degrade damaged D1 protein under the recovery conditions.
机译:研究了豌豆叶片(Pisum sativum L. cv Greenfeast)对不同光强度的光抑制后,D1蛋白的更新和光系统II(PSII)光化学效率的恢复。适应不同光强度的所有豌豆都能在远高于其生长光辐照度的光强度下至少部分地从光抑制中恢复。但是,豌豆叶片在增加的高辐照度下从光抑制作用中恢复的能力严格取决于叶片的光适应性。即,在生长过程中辐照度越高,豌豆叶片在中等和强光下从光抑制中恢复的能力就越好。在我们的实验条件下,主要监测的是D1蛋白转换相关的恢复,因为在存在叶绿体编码的蛋白合成抑制剂林可霉素的情况下,仅发生了可忽略的恢复。在黑暗中,PSII光化学效率没有恢复,受损D1蛋白也没有明显降解。然而,在弱光条件下,适应不同光强度的所有豌豆中PSII的恢复良好,并伴随着D1蛋白的快速降解。在50μmol光子m-2 s-1的恢复条件下,光抑制叶片中D1蛋白的降解速率估计是非光抑制叶片中3-4倍。在400μmol光子m-2 s-1的中等光照下,受光抑制的弱光豌豆不能进一步增加D1蛋白降解速度,使其高于未受光抑制的叶片,而PSII功能的恢复也没有可能。另一方面,即使在中度和强光下,受光抑制的高光照叶片也能够使D1蛋白降解速率高于未受光抑制的叶片,从而确保PSII功能至少部分恢复。我们得出的结论是,光抑制叶片在不同辐照下恢复PSII功能的能力与叶片在恢复条件下降解受损D1蛋白的能力直接相关。

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