Zhang Yumeng, Wang Yaqi, Wei Wei, Wang Min, Jia Shuzhao, Yang Mingkun, Ge Feng
State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, China.
Key Laboratory of Algal Biology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, China.
Front Plant Sci. 2022 Sep 29;13:994056. doi: 10.3389/fpls.2022.994056. eCollection 2022.
Protein homeostasis is tightly regulated by protein quality control systems such as chaperones and proteases. In cyanobacteria, the ClpXP proteolytic complex is regarded as a representative proteolytic system and consists of a hexameric ATPase ClpX and a tetradecameric peptidase ClpP. However, the functions and molecular mechanisms of ClpX in cyanobacteria remain unclear. This study aimed to decipher the unique contributions and regulatory networks of ClpX in the model cyanobacterium sp. PCC 6803 (hereafter ). We showed that the interruption of led to slower growth, decreased high light tolerance, and impaired photosynthetic cyclic electron transfer. A quantitative proteomic strategy was employed to globally identify ClpX-regulated proteins in cells. In total, we identified 172 differentially expressed proteins (DEPs) upon the interruption of . Functional analysis revealed that these DEPs are involved in diverse biological processes, including glycolysis, nitrogen assimilation, photosynthetic electron transport, ATP-binding cassette (ABC) transporters, and two-component signal transduction. The expression of 24 DEPs was confirmed by parallel reaction monitoring (PRM) analysis. In particular, many hypothetical or unknown proteins were found to be regulated by ClpX, providing new candidates for future functional studies on ClpX. Together, our study provides a comprehensive ClpX-regulated protein network, and the results serve as an important resource for understanding protein quality control systems in cyanobacteria.
蛋白质稳态由伴侣蛋白和蛋白酶等蛋白质质量控制系统严格调控。在蓝细菌中,ClpXP蛋白水解复合体被视为一种典型的蛋白水解系统,由六聚体ATP酶ClpX和十四聚体肽酶ClpP组成。然而,蓝细菌中ClpX的功能和分子机制仍不清楚。本研究旨在解析模式蓝细菌集胞藻PCC 6803(以下简称集胞藻)中ClpX的独特作用和调控网络。我们发现,ClpX中断导致生长变慢、高光耐受性降低以及光合循环电子传递受损。采用定量蛋白质组学策略全面鉴定集胞藻细胞中受ClpX调控的蛋白质。总共,我们鉴定出172种差异表达蛋白(DEPs),这些蛋白在ClpX中断后出现。功能分析表明,这些DEPs参与多种生物学过程,包括糖酵解、氮同化、光合电子传递、ATP结合盒(ABC)转运蛋白以及双组分信号转导。通过平行反应监测(PRM)分析证实了24种DEPs的表达。特别地,发现许多假定或未知的蛋白质受ClpX调控,为未来ClpX的功能研究提供了新的候选对象。总之,我们的研究提供了一个全面的ClpX调控蛋白网络,研究结果为理解蓝细菌中的蛋白质质量控制系统提供了重要资源。