首页> 外文期刊>Journal of Experimental Botany >Interrelated modules in cyanobacterial photosynthesis: the carbon-concentrating mechanism, photorespiration, and light perception
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Interrelated modules in cyanobacterial photosynthesis: the carbon-concentrating mechanism, photorespiration, and light perception

机译:蓝细菌光合作用的相互关联的模块:碳浓缩机制,光呼吸和光感知

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Inorganic carbon uptake and photorespiratory pathway genes in Fremyella are affected by the cyanobacteriochrome regulator of chromatic acclimation RcaE, suggesting that there is interplay among photorespiration, light reactions, and the CCM.Here we consider the cyanobacterial carbon-concentrating mechanism (CCM) and photorespiration in the context of the regulation of light harvesting, using a conceptual framework borrowed from engineering: modularity. Broadly speaking, biological 'modules' are semi-autonomous functional units such as protein domains, operons, metabolic pathways, and (sub)cellular compartments. They are increasingly recognized as units of both evolution and engineering. Modules may be connected by metabolites, such as NADPH, ATP, and 2PG. While the Calvin-Benson-Bassham Cycle and photorespiratory salvage pathways can be considered as metabolic modules, the carboxysome, the core of the cyanobacterial CCM, is both a structural and a metabolic module. In photosynthetic organisms, which use light cues to adapt to the external environment and which tune the photosystems to provide the ATP and reducing power for carbon fixation, light-regulated modules are critical. The primary enzyme of carbon fixation, RuBisCO, uses CO2 as a substrate, which is accumulated via the CCM. However RuBisCO also has a secondary reaction in which it utilizes O-2, a by-product of the photochemical modules, which leads to photorespiration. A complete understanding of the interplay among CCM and photorespiration is predicated on uncovering their connections to the light reactions and the regulatory factors and pathways that tune these modules to external cues. We probe this connection by investigating light inputs into the CCM and photorespiratory pathways in the chromatically acclimating cyanobacterium Fremyella diplosiphon.
机译:Fremyella中的无机碳吸收和光呼吸途径基因受色适应RcaE的蓝细菌色素调节剂的影响,这表明光呼吸,光反应和CCM之间存在相互作用。使用从工程学借来的概念框架:模块化,在光收集监管的背景下。广义上讲,生物学的“模块”是半自治的功能单元,例如蛋白质结构域,操纵子,代谢途径和(亚)细胞区室。它们越来越被认为是进化和工程学的单元。模块可以通过代谢物(例如NADPH,ATP和2PG)连接。虽然可以将Calvin-Benson-Bassham循环和光呼吸挽救途径视为代谢模块,但作为蓝藻CCM核心的羧基小体既是结构模块,也是代谢模块。在光合生物中,它们利用光线索适应外部环境,并调整光系统以提供ATP并降低固碳能力,因此光调节模块至关重要。碳固定的主要酶RuBisCO使用CO2作为底物,该底物通过CCM积累。但是,RuBisCO还具有次级反应,其中利用了光化学模块的副产物O-2,这导致了光呼吸。要全面了解CCM和光呼吸之间的相互作用,就要了解它们与光反应的关系以及调节这些模块与外界信号的调节因子和途径。我们通过调查进入CCM的光输入以及在适应色彩的蓝藻Fremyella diplosiphon中的光呼吸途径来探究这种联系。

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