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首页> 外文期刊>Photosynthesis Research: An International Journal >Exploring the low photosynthetic efficiency of cyanobacteria in blue light using a mutant lacking phycobilisomes
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Exploring the low photosynthetic efficiency of cyanobacteria in blue light using a mutant lacking phycobilisomes

机译:使用缺乏植物霉菌的突变体探讨蓝光中蓝光细胞的低光合效率

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摘要

The ubiquitous chlorophyll a (Chl a) pigment absorbs both blue and red light. Yet, in contrast to green algae and higher plants, most cyanobacteria have much lower photosynthetic rates in blue than in red light. A plausible but not yet well-supported hypothesis is that blue light results in limited energy transfer to photosystem II (PSII), because cyanobacteria invest most Chl a in photosystem I (PSI), whereas their phycobilisomes (PBS) are mostly associated with PSII but do not absorb blue photons. In this paper, we compare the photosynthetic performance in blue and orange-red light of wildtype Synechocystis sp. PCC 6803 and a PBS-deficient mutant. Our results show that the wildtype had much lower biomass, Chl a content, PSI:PSII ratio and O-2 production rate per PSII in blue light than in orange-red light, whereas the PBS-deficient mutant had a low biomass, Chl a content, PSI:PSII ratio, and O-2 production rate per PSII in both light colors. More specifically, the wildtype displayed a similar low photosynthetic efficiency in blue light as the PBS-deficient mutant in both light colors. Our results demonstrate that the absorption of light energy by PBS and subsequent transfer to PSII are crucial for efficient photosynthesis in cyanobacteria, which may explain both the low photosynthetic efficiency of PBS-containing cyanobacteria and the evolutionary success of chlorophyll-based light-harvesting antennae in environments dominated by blue light.
机译:无处不在的叶绿素A(CHL A)颜料吸收蓝色和红光。然而,与绿藻和更高的植物形成鲜明比,大多数蓝藻的光合速率远低于红光。一个合理但尚未得到良好的假设是,蓝光导致光束II(PSII)的能量转移有限,因为蓝杆菌在照相I(PSI)中投入大多数CHL A,而它们的植物机构(PBS)主要与PSII相关但是不要吸收蓝色光子。在本文中,我们比较了野生型Senchocystis SP的蓝色和橙红光的光合性能。 PCC 6803和PBS缺陷突变体。我们的研究结果表明,野外生物量低得多,CHL含量,PSI:PSII比率和每PSII的o-2生产率,而不是橙红光,而PBS缺陷型突变体具有低生物量,CHL A.内容,PSI:PSII比率和每PSII的O-2生产率两种浅色。更具体地,野外晶体在蓝光中显示出类似的低光合效率,作为浅色的PBS缺陷型突变体。我们的结果表明,PBS的光能和随后转移到PSII的吸收对于青霉菌中的有效光合作用至关重要,这可以解释含PBS的蓝细菌的低光合效率和基于叶绿素的光收获天线的进化成功由蓝光主导的环境。

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