Molecular interactions of the chaperone CcmS and carboxysome shell protein CcmK1 that mediate β-carboxysome assembly.

IF 6.5 1区 生物学 Q1 PLANT SCIENCES Plant Physiology Pub Date : 2024-11-04 DOI:10.1093/plphys/kiae438
Jin Cheng, Chun-Yang Li, Meng Meng, Jian-Xun Li, Shu-Jun Liu, Hai-Yan Cao, Ning Wang, Yu-Zhong Zhang, Lu-Ning Liu
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Abstract

The carboxysome is a natural proteinaceous organelle for carbon fixation in cyanobacteria and chemoautotrophs. It comprises hundreds of protein homologs that self-assemble to form a polyhedral shell structure to sequester cargo enzymes, ribulose 1,5-bisphosphate carboxylase/oxygenase (Rubisco), and carbonic anhydrases. How these protein components assemble to construct a functional carboxysome is a central question in not only understanding carboxysome structure and function but also synthetic engineering of carboxysomes for biotechnological applications. Here, we determined the structure of the chaperone protein CcmS, which has recently been identified to be involved in β-carboxysome assembly, and its interactions with β-carboxysome proteins. The crystal structure at 1.99 Å resolution reveals CcmS from Nostoc sp. PCC 7120 forms a homodimer, and each CcmS monomer consists of five α-helices and four β-sheets. Biochemical assays indicate that CcmS specifically interacts with the C-terminal extension of the carboxysome shell protein CcmK1, but not the shell protein homolog CcmK2 or the carboxysome scaffolding protein CcmM. Moreover, we solved the structure of a stable complex of CcmS and the C-terminus of CcmK1 at 1.67 Å resolution and unveiled how the CcmS dimer interacts with the C-terminus of CcmK1. These findings allowed us to propose a model to illustrate CcmS-mediated β-carboxysome assembly by interacting with CcmK1 at the outer shell surface. Collectively, our study provides detailed insights into the accessory factors that drive and regulate carboxysome assembly, thereby improving our knowledge of carboxysome structure, function, and bioengineering.

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介导β-羧酶体组装的伴侣蛋白CcmS和羧酶体外壳蛋白CcmK1的分子相互作用。
羧酶体是蓝藻和化能自养生物进行碳固定的天然蛋白质细胞器。它由数以百计的蛋白质同源物组成,这些蛋白质同源物自我组装形成一个多面体外壳结构,用于封存货物酶、1,5-二磷酸核酮糖羧化酶/氧合酶(Rubisco)和碳酸酐酶。这些蛋白质成分如何组装以构建功能性羧酶体,不仅是了解羧酶体结构和功能的核心问题,也是生物技术应用中羧酶体合成工程的核心问题。在这里,我们测定了最近被确认参与β-羧酶体组装的伴侣蛋白CcmS的结构及其与β-羧酶体蛋白的相互作用。1.99 Å 分辨率的晶体结构显示,来自 Nostoc sp. PCC 7120 的 CcmS 形成一个同源二聚体,每个 CcmS 单体由五个 α-螺旋和四个 β-片层组成。生化实验表明,CcmS 能与羧酶体外壳蛋白 CcmK1 的 C 端延伸部分发生特异性相互作用,但不能与外壳蛋白同源物 CcmK2 或羧酶体支架蛋白 CcmM 发生相互作用。此外,我们还以 1.67 Å 的分辨率解析了 CcmS 与 CcmK1 C 端稳定复合物的结构,揭示了 CcmS 二聚体如何与 CcmK1 的 C 端相互作用。这些发现使我们能够提出一个模型,说明 CcmS 通过与外壳表面的 CcmK1 相互作用,介导了β-羧酶体的组装。总之,我们的研究提供了关于驱动和调节羧酶体组装的附属因子的详细见解,从而提高了我们对羧酶体结构、功能和生物工程的认识。
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来源期刊
Plant Physiology
Plant Physiology 生物-植物科学
CiteScore
12.20
自引率
5.40%
发文量
535
审稿时长
2.3 months
期刊介绍: Plant Physiology® is a distinguished and highly respected journal with a rich history dating back to its establishment in 1926. It stands as a leading international publication in the field of plant biology, covering a comprehensive range of topics from the molecular and structural aspects of plant life to systems biology and ecophysiology. Recognized as the most highly cited journal in plant sciences, Plant Physiology® is a testament to its commitment to excellence and the dissemination of groundbreaking research. As the official publication of the American Society of Plant Biologists, Plant Physiology® upholds rigorous peer-review standards, ensuring that the scientific community receives the highest quality research. The journal releases 12 issues annually, providing a steady stream of new findings and insights to its readership.
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