光抑制诱导蓝藻PS II藻胆体能量传递过程的改变。

Duvvuri Prasanna Kumar, Sistla D S Murthy
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引用次数: 8

摘要

藻类或植物暴露在高于光合作用光饱和点的辐射下被称为强光胁迫。这种强光胁迫引起各种反应,包括光合机构的光抑制。通过测定色蛋白的吸收和荧光等参数,可以清楚地判断光抑制的程度。在蓝藻和红藻中,大部分光系统(PS) II相关的光收集是由一种称为藻胆异构体(PBS)的膜附着复合体完成的。通过测量室温PC荧光发射光谱,研究了高强度光(1000 ~ 4000微摩尔光子m(-2) s(-1))对蓝藻螺旋藻从PBSs到PS II激发能转移的影响。强光(3000微摩尔光子m(-2) s(-1))胁迫对PC荧光发射光谱有显著影响。另一方面,光胁迫诱导PBS的PC荧光强度比增加,说明光胁迫抑制了激发能从PBS向PS II的转移。3000微摩尔光子m(-2) s(-1)的强光处理导致连接PC盘的31.5 kDa连接多肽消失。此外,我们观察到其他多肽含量也有类似的下降。我们的数据得出结论,螺旋藻细胞在光处理下引起藻胆蛋白(PBPs)的改变,并影响PBPs内的能量传递过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Photoinhibition induced alterations in energy transfer process in phycobilisomes of PS II in the cyanobacterium, Spirulina platensis.

Exposure of algae or plants to irradiance from above the light saturation point of photosynthesis is known as high light stress. This high light stress induces various responses including photoinhibition of the photosynthetic apparatus. The degree of photoinhibition could be clearly determined by measuring the parameters such as absorption and fluorescence of chromoproteins. In cyanobacteria and red algae, most of the photosystem (PS) II associated light harvesting is performed by a membrane attached complex called the phycobilisome (PBS). The effects of high intensity light (1000-4000 micromol photons m(-2) s(-1)) on excitation energy transfer from PBSs to PS II in a cyanobacterium Spirulina platensis were studied by measuring room temperature PC fluorescence emission spectra. High light (3000 micromol photons m(-2) s(-1)) stress had a significant effect on PC fluorescence emission spectra. On the other hand, light stress induced an increase in the ratio of PC fluorescence intensity of PBS indicating that light stress inhibits excitation energy transfer from PBS to PS II. The high light treatment to 3000 micromol photons m(-2) s(-1) caused disappearance of 31.5 kDa linker polypeptide which is known to link PC discs together. In addition we observed the similar decrease in the other polypeptide contents. Our data concludes that the Spirulina cells upon light treatment causes alterations in the phycobiliproteins (PBPs) and affects the energy transfer process within the PBSs.

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