SpoIIIL是枯草芽孢杆菌产孢过程中有效的细胞-细胞信号传导所必需的前孢子因子。

IF 4 2区 生物学 Q1 GENETICS & HEREDITY
PLoS Genetics Pub Date : 2025-07-03 eCollection Date: 2025-07-01 DOI:10.1371/journal.pgen.1011768
Danae Morales Angeles, Kaitlyn Coleman, Chimezie Progress Odika, Chris L B Graham, Helena Chan, Michael Gilmore, Najwa Taib, Elda Bauda, Christine Moriscot, Benoit Gallet, Hannah Fisher, Per A Bullough, Cécile Morlot, Darius Köster, Simonetta Gribaldo, Felipe Cava, Christopher D A Rodrigues
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引用次数: 0

摘要

在孢子内形成过程中,母细胞和发育中的孢子建立细胞-细胞信号通路,导致室特异性转录和形态发生的关键步骤。内孢子形成细菌也会组装一个高度保守的基本膜复合体,称为a - q复合体,它在物理上连接这些细胞,并可能作为它们之间的分子通道。虽然SpoIIIL先前被确定为枯草芽孢杆菌中假定的a - q复合物成分,但其确切作用尚不清楚。在这里,我们发现SpoIIIL在a - q复合体中不起作用,而是作为有效的细胞-细胞信号传导所需的前孢子特异性因子,导致晚期母细胞转录。定量图像分析显示,spoIIIL突变孢子不表现出A-Q复合物突变体的标志性表型。此外,与特性良好的A-Q复合物蛋白不同,spoii - gfp在分散到前孢子细胞质之前均匀地定位于前孢子膜。合成产孢筛选鉴定了spoIIIL和murAB之间的遗传关系,murAB是murAA的一种类似物,在产孢过程中需要有效的肽聚糖前体合成。细胞学分析表明,spoIIIL murAB双突变体在孢子皮质肽聚糖的组装上存在严重缺陷。对spoivil如何影响皮质的研究表明,它有助于SpoIVB的活性,SpoIVB是一种分泌的前孢子蛋白酶,它启动母细胞将不活跃的前σK加工为活跃的σK所需的信号通路,进而上调皮质形成所需的肽聚糖前体合成。因此,突变体表现出延迟和减少的前σ k加工和减少的肽聚糖前体的积累。因此,spoIIIL murAB双突变体的皮质组装缺陷是由于促进肽聚糖前体合成的不同途径的改变造成的。最后,系统发育分析表明,SpoIIIL仅存在于硅藻属的一部分物种中,这突出了导致σK激活的信号通路的进化专门化。总的来说,我们的发现重新定义了SpoIIIL作为有效细胞-细胞信号传导所需的前孢子因子,控制晚期母细胞转录。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SpoIIIL is a forespore factor required for efficient cell-cell signalling during Bacillus subtilis sporulation.

During endospore formation, the mother cell and developing spore establish cell-cell signalling pathways that lead to compartment-specific transcription and key steps in morphogenesis. Endospore-forming bacteria also assemble a highly conserved essential membrane complex, called the A-Q complex, that physically connects these cells and may serve as a molecular conduit between them. While SpoIIIL was previously identified as a putative A-Q complex component in Bacillus subtilis, its exact role remains unclear. Here, we found that SpoIIIL does not function in the A-Q complex but instead acts as a forespore-specific factor required for efficient cell-cell signalling that leads to late mother cell transcription. Quantitative image analysis revealed that spoIIIL mutant spores do not exhibit hallmark phenotypes of A-Q complex mutants. Furthermore, unlike well-characterized A-Q complex proteins, SpoIIIL-GFP localizes uniformly in the forespore membrane before dispersing into the forespore cytoplasm. A synthetic sporulation screen identified a genetic relationship between spoIIIL and murAB, a paralog of murAA, required for efficient peptidoglycan precursor synthesis during sporulation. Cytological analysis indicates that the spoIIIL murAB double mutant is severely defective in the assembly of spore cortex peptidoglycan. Investigations into how SpoIIIL affects the cortex suggest it contributes to the activity of SpoIVB, a secreted forespore protease that initiates the signalling pathway required for processing of inactive pro-σK to active σK in the mother cell, which in turn up-regulates peptidoglycan precursor synthesis required for cortex formation. Accordingly, the spoIIIL mutant exhibits delayed and reduced pro-σK processing and decreased accumulation of peptidoglycan precursors. Thus, cortex assembly defects in the spoIIIL murAB double mutant results from alterations in separate pathways contributing to peptidoglycan precursor synthesis. Finally, phylogenetic analyses reveal that SpoIIIL is restricted to a subset of Bacillales species, highlighting evolutionary specialization in the signalling pathway leading to σK activation. Collectively, our findings redefine SpoIIIL as a forespore factor required for efficient cell-cell signalling that controls late mother-cell transcription.

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来源期刊
PLoS Genetics
PLoS Genetics GENETICS & HEREDITY-
自引率
2.20%
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438
期刊介绍: PLOS Genetics is run by an international Editorial Board, headed by the Editors-in-Chief, Greg Barsh (HudsonAlpha Institute of Biotechnology, and Stanford University School of Medicine) and Greg Copenhaver (The University of North Carolina at Chapel Hill). Articles published in PLOS Genetics are archived in PubMed Central and cited in PubMed.
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