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依赖RcaE对羧酶体结构蛋白的调控在环境决定嗜盐嗜碱菌中羧酶体形态和丰度方面起核心作用。

RcaE-Dependent Regulation of Carboxysome Structural Proteins Has a Central Role in Environmental Determination of Carboxysome Morphology and Abundance in .

作者信息

Rohnke Brandon A, Singh Shailendra P, Pattanaik Bagmi, Montgomery Beronda L

机构信息

Department of Energy-Plant Research Laboratory, Michigan State University, Plant Biology Laboratories, East Lansing, Michigan, USA.

Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, Michigan, USA.

出版信息

mSphere. 2018 Jan 24;3(1). doi: 10.1128/mSphere.00617-17. eCollection 2018 Jan-Feb.

Abstract

Carboxysomes are central to the carbon dioxide-concentrating mechanism (CCM) and carbon fixation in cyanobacteria. Although the structure is well understood, roles of environmental cues in the synthesis, positioning, and functional tuning of carboxysomes have not been systematically studied. is a model cyanobacterium for assessing impacts of environmental light cues on photosynthetic pigmentation and tuning of photosynthetic efficiency during complementary chromatic acclimation (CCA), which is controlled by the photoreceptor RcaE. Given the central role of carboxysomes in photosynthesis, we investigated roles of light-dependent RcaE signaling in carboxysome structure and function. A Δ mutant exhibits altered carboxysome size and number, gene expression, and carboxysome protein accumulation relative to the wild-type (WT) strain. Several Ccm proteins, including carboxysome shell proteins and core-nucleating factors, overaccumulate in Δ cells relative to WT cells. Additionally, levels of carboxysome cargo RuBisCO in the Δ mutant are lower than or unchanged from those in the WT strain. This shift in the ratios of carboxysome shell and nucleating components to the carboxysome cargo appears to drive carboxysome morphology and abundance dynamics. Carboxysomes are also occasionally mislocalized spatially to the periphery of spherical mutants within thylakoid membranes, suggesting that carboxysome positioning is impacted by cell shape. The RcaE photoreceptor links perception of external light cues to regulating carboxysome structure and function and, thus, to the cellular capacity for carbon fixation. Carboxysomes are proteinaceous subcellular compartments, or bacterial organelles, found in cyanobacteria that consist of a protein shell surrounding a core primarily composed of the enzyme ribulose-1,5-biphosphate carboxylase/oxygenase (RuBisCO) that is central to the carbon dioxide-concentrating mechanism (CCM) and carbon fixation. Whereas significant insights have been gained regarding the structure and synthesis of carboxysomes, limited attention has been given to how their size, abundance, and protein composition are regulated to ensure optimal carbon fixation in dynamic environments. Given the centrality of carboxysomes in photosynthesis, we provide an analysis of the role of a photoreceptor, RcaE, which functions in matching photosynthetic pigmentation to the external environment during complementary chromatic acclimation and thereby optimizing photosynthetic efficiency, in regulating carboxysome dynamics. Our data highlight a role for RcaE in perceiving external light cues and regulating carboxysome structure and function and, thus, in the cellular capacity for carbon fixation and organismal fitness.

摘要

羧酶体对于蓝细菌中的二氧化碳浓缩机制(CCM)和碳固定至关重要。尽管其结构已为人熟知,但环境信号在羧酶体的合成、定位和功能调节中的作用尚未得到系统研究。[具体菌株名称]是一种模式蓝细菌,用于评估环境光信号对光合色素沉着的影响以及在互补色适应(CCA)过程中光合效率的调节,CCA由光感受器RcaE控制。鉴于羧酶体在光合作用中的核心作用,我们研究了光依赖的RcaE信号在羧酶体结构和功能中的作用。与野生型(WT)菌株相比,一个Δ突变体表现出羧酶体大小和数量的改变、[相关基因名称]基因表达以及羧酶体蛋白积累的变化。相对于WT细胞,几种Ccm蛋白,包括羧酶体外壳蛋白和核心成核因子,在Δ细胞中过度积累。此外,Δ突变体中羧酶体负载的RuBisCO水平低于WT菌株或与WT菌株相同。羧酶体外壳和成核成分与羧酶体负载的比例变化似乎驱动了羧酶体形态和丰度的动态变化。羧酶体在类囊体膜内偶尔也会在空间上错误定位到球形突变体的周边,这表明羧酶体的定位受细胞形状影响。光感受器RcaE将外部光信号的感知与羧酶体结构和功能的调节联系起来,从而与细胞的碳固定能力相关。羧酶体是蛋白质性的亚细胞区室,即细菌细胞器,存在于蓝细菌中,由围绕核心的蛋白质外壳组成,核心主要由核酮糖-1,5-二磷酸羧化酶/加氧酶(RuBisCO)组成,该酶对二氧化碳浓缩机制(CCM)和碳固定至关重要。尽管在羧酶体的结构和合成方面已经取得了重要进展,但对于如何调节它们的大小、丰度和蛋白质组成以确保在动态环境中实现最佳碳固定,关注较少。鉴于羧酶体在光合作用中的核心地位,我们分析了光感受器RcaE的作用,RcaE在互补色适应过程中使光合色素沉着与外部环境相匹配,从而优化光合效率,在调节羧酶体动态变化方面发挥作用。我们的数据突出了RcaE在感知外部光信号以及调节羧酶体结构和功能方面的作用,进而在细胞的碳固定能力和生物体适应性方面发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f93c/5784247/87e3f367e322/sph0011824650001.jpg

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