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解析两种模式蓝细菌全细胞中光诱导的光系统I和光系统II激发能量转移的变化。

Elucidating light-induced changes in excitation energy transfer of photosystem I and II in whole cells of two model cyanobacteria.

作者信息

Biswas Sandeep, Niedzwiedzki Dariusz M, Pakrasi Himadri B

机构信息

Department of Biology, Washington University, St. Louis, MO, 63130, USA.

Center for Solar Energy and Energy Storage, Washington University, St. Louis, MO, 63130, USA.

出版信息

Photosynth Res. 2025 Feb;163(1):1. doi: 10.1007/s11120-024-01124-3. Epub 2024 Dec 16.

Abstract

Excitation energy transfer between the photochemically active protein complexes is key for photosynthetic processes. Phototrophic organisms like cyanobacteria experience subtle changes in irradiance under natural conditions. Such changes need adjustments to the excitation energy transfer between the photosystems for sustainable growth. Spectroscopic assessments on purified photosystems usually fail to capture these subtle changes. In this study, we examined whole cells from two model cyanobacteria, Synechocystis sp. PCC 6803 and Synechococcus elongatus UTEX 2973, grown under high and low light conditions to decode the high light tolerance of the latter. This allowed us to study photosynthetic machinery in the native state and in this work we particularly focused on the excitation energy transfer within PSII and PSI manifold. Understanding the high-light tolerance mechanism is imperative as it can help design strategies for increasing the light tolerance of cyanobacteria used for carbon neutral bioproduction. Our observations suggest that Synechococcus 2973 employs an uncommon photoprotection strategy, and the absence of hydroxy-echinenone pigment in this strain opens the possibility of an orange carotenoid protein homolog utilizing zeaxanthin as a scavenger of reactive oxygen species to provide photoprotection. Furthermore, the adjustments to the high-light adaptation mechanism involve downregulating the phycobilisome antenna in Synechococcus 2973, but not in Synechocystis 6803. Additionally, the stoichiometric changes to PSII/PSI are more tightly regulated in Synechococcus 2973.

摘要

光化学活性蛋白复合物之间的激发能转移是光合过程的关键。像蓝细菌这样的光合生物在自然条件下会经历光照强度的细微变化。这种变化需要对光系统之间的激发能转移进行调整,以实现可持续生长。对纯化光系统的光谱评估通常无法捕捉到这些细微变化。在本研究中,我们检测了两种模式蓝细菌集胞藻属PCC 6803和聚球藻属UTEX 2973在高光和低光条件下生长的全细胞,以解析后者的高光耐受性。这使我们能够研究天然状态下的光合机制,在这项工作中,我们特别关注了光系统II和光系统I内的激发能转移。了解高光耐受机制至关重要,因为它有助于设计提高用于碳中性生物生产的蓝细菌光耐受性的策略。我们的观察结果表明,聚球藻2973采用了一种不常见的光保护策略,并且该菌株中缺乏羟基海胆烯酮色素,这使得一种橙色类胡萝卜素蛋白同源物有可能利用玉米黄质作为活性氧清除剂来提供光保护。此外,对高光适应机制的调整涉及下调聚球藻2973中的藻胆体天线,但集胞藻6803中则不然。此外,聚球藻2973中光系统II/光系统I的化学计量变化受到更严格的调控。

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