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首页> 外文期刊>Plant and cell physiology >The Involvement of Dual Mechanisms of Photoinactivation of Photosystem II in Capsicum annuum L. Plants.
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The Involvement of Dual Mechanisms of Photoinactivation of Photosystem II in Capsicum annuum L. Plants.

机译:辣椒植物光系统II光灭活双重机制的参与。

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摘要

For plants, light is an indispensable resource. However, it also causes a loss of photosynthetic activity associated with photoinactivation of photosystem II (PSII). In studies of the mechanism of this photoinactivation, there are two conflicting hypotheses at present. One is that excess energy received by leaves, being neither utilized by photosynthesis nor dissipated safely in non-photochemical quenching, causes the photoinactivation. The other involves a two-step mechanism in which excitation of Mn by photons is the primary cause. In the former hypothesis, photoinactivation of PSII should not occur in low light that provides little excess energy, but in the latter hypothesis it should. Therefore, we tested these two hypotheses in different irradiances. We used a system that can measure the fraction of functional PSII complexes under natural conditions and over a long period in intact leaves, which were attached to a plant treated with lincomycin taken up via the roots. The leaves were photoinactivated in low, medium or high light (30, 60 or 950 omol mpo sp#) with white, blue, green or red light-emitting diode arrays. Our results showed that the extent of photoinactivation per photon exposure was higher in high light than in low light, consistent with the abundance of excess energy. However, photoinactivation did occur in low light with little excess energy, and blue light caused the greatest extent of photoinactivation followed by white, green and red light in this order, an order that can be predicted from the Mn absorbance spectrum. These results suggest that both mechanisms occur in the photoinactivation process.
机译:对于植物而言,光是必不可少的资源。但是,它也导致与光系统II(PSII)的光灭活相关的光合作用丧失。在对这种光灭活机理的研究中,目前有两个相互矛盾的假设。一种是叶子接收到的多余能量既未被光合作用也未被安全地耗散在非光化学猝灭中,则会导致光灭活。另一个涉及两步机制,其中光子激发Mn是主要原因。在前一种假设中,PSII的光灭活不应该在提供很少过量能量的弱光下发生,而在后一种假设中,它应该发生。因此,我们在不同的辐照度下测试了这两个假设。我们使用的系统可以在自然条件下和长时间内完整叶片中测量功能性PSII复合物的比例,这些叶片与通过根吸收的林可霉素处理过的植物相连。在具有白色,蓝色,绿色或红色发光二极管阵列的低,中或高光(30、60或950 omol mpo sp#)下对叶片进行光灭活。我们的结果表明,高光下每光子暴露的光灭活程度要高于低光下,这与过量能量​​的丰富相一致。但是,光灭活确实在弱光下发生,几乎没有多余的能量,并且蓝光引起最大程度的光灭活,其次是白光,绿光和红光,该顺序可以从Mn吸收光谱中预测。这些结果表明这两种机制都发生在光灭活过程中。

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