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遗传筛选确定了芽孢杆菌孢子形成的吞噬阶段中参与包膜重塑的其他基因。

Genetic Screens Identify Additional Genes Implicated in Envelope Remodeling during the Engulfment Stage of Bacillus subtilis Sporulation.

机构信息

Australian Institute for Microbiology and Infection, University of Technology Sydneygrid.117476.2 (UTS), Sydney, Australia.

Department of Microbiology, Unit Evolutionary Biology of the Microbial Cell, Institut Pasteurgrid.428999.7, Paris, France.

出版信息

mBio. 2022 Oct 26;13(5):e0173222. doi: 10.1128/mbio.01732-22. Epub 2022 Sep 6.

DOI:10.1128/mbio.01732-22
PMID:36066101
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9600426/
Abstract

During bacterial endospore formation, the developing spore is internalized into the mother cell through a phagocytic-like process called engulfment, which involves synthesis and hydrolysis of peptidoglycan. Engulfment peptidoglycan hydrolysis requires the widely conserved and well-characterized DMP complex, composed of SpoIID, SpoIIM, and SpoIIP. In contrast, although peptidoglycan synthesis has been implicated in engulfment, the protein players involved are less well defined. The widely conserved SpoIIIAH-SpoIIQ interaction is also required for engulfment efficiency, functioning like a ratchet to promote membrane migration around the forespore. Here, we screened for additional factors required for engulfment using transposon sequencing in Bacillus subtilis mutants with mild engulfment defects. We discovered that YrvJ, a peptidoglycan hydrolase, and the MurA paralog MurAB, involved in peptidoglycan precursor synthesis, are required for efficient engulfment. Cytological analyses suggest that both factors are important for engulfment when the DMP complex is compromised and that MurAB is additionally required when the SpoIIIAH-SpoIIQ ratchet is abolished. Interestingly, despite the importance of MurAB for sporulation in B. subtilis, phylogenetic analyses of MurA paralogs indicate that there is no correlation between sporulation and the number of MurA paralogs and further reveal the existence of a third MurA paralog, MurAC, within the . Collectively, our studies identify two new factors that are required for efficient envelop remodeling during sporulation and highlight the importance of peptidoglycan precursor synthesis for efficient engulfment in B. subtilis and likely other endospore-forming bacteria. In bacteria, cell envelope remodeling is critical for cell growth and division. This is also the case during the development of bacteria into highly resistant endospores (spores), known as sporulation. During sporulation, the developing spore becomes internalized inside the mother cell through a phagocytic-like process called engulfment, which is essential to form the cell envelope of the spore. Engulfment involves both the synthesis and hydrolysis of peptidoglycan and the stabilization of migrating membranes around the developing spore. Importantly, although peptidoglycan synthesis has been implicated during engulfment, the specific genes that contribute to this molecular element of engulfment have remained unclear. Our study identifies two new factors that are required for efficient envelope remodeling during engulfment and emphasizes the importance of peptidoglycan precursor synthesis for efficient engulfment in the model organism Bacillus subtilis and likely other endospore-forming bacteria. Finally, our work highlights the power of synthetic screens to reveal additional genes that contribute to essential processes during sporulation.

摘要

在细菌内孢子形成过程中,发育中的孢子通过一种称为吞噬的类似吞噬过程被内化到母细胞中,该过程涉及肽聚糖的合成和水解。吞噬肽聚糖水解需要广泛保守且特征明确的 DMP 复合物,该复合物由 SpoIID、SpoIIM 和 SpoIIP 组成。相比之下,尽管肽聚糖合成已被牵连到吞噬作用中,但涉及的蛋白质参与者定义不明确。广泛保守的 SpoIIIAH-SpoIIQ 相互作用对于吞噬效率也是必需的,它像棘轮一样促进围绕前孢子的膜迁移。在这里,我们使用转座子测序在枯草芽孢杆菌突变体中筛选了吞噬作用所需的其他因子,这些突变体的吞噬作用缺陷较轻。我们发现,YrvJ 是一种肽聚糖水解酶,MurAB 是肽聚糖前体合成中的 MurA 同工酶的类似物,对于有效的吞噬作用是必需的。细胞学分析表明,当 DMP 复合物受到损害时,这两个因素对于吞噬作用都很重要,并且当 SpoIIIAH-SpoIIQ 棘轮被废除时,MurAB 也是必需的。有趣的是,尽管 MurAB 对枯草芽孢杆菌的孢子形成很重要,但 MurA 同工酶的系统发育分析表明,孢子形成与 MurA 同工酶的数量之间没有相关性,并且进一步揭示了存在第三种 MurA 同工酶 MurAC 在. 内。总的来说,我们的研究确定了两个新的因子,这些因子对于孢子形成过程中有效的包膜重塑是必需的,并强调了肽聚糖前体合成对于枯草芽孢杆菌和可能其他形成内孢子的细菌中有效吞噬作用的重要性。 在细菌中,细胞包膜重塑对于细胞生长和分裂至关重要。这在细菌发育成高度抗性的内孢子(孢子)时也是如此,这种过程称为孢子形成。在孢子形成过程中,发育中的孢子通过一种称为吞噬的类似吞噬过程被内化到母细胞中,这对于形成孢子的细胞包膜是必需的。吞噬作用既涉及肽聚糖的合成和水解,也涉及围绕发育中的孢子的迁移膜的稳定。重要的是,尽管肽聚糖合成已被牵连到吞噬作用中,但有助于吞噬作用这一分子元件的特定基因仍不清楚。我们的研究确定了两个新的因子,这些因子对于吞噬作用过程中的有效包膜重塑是必需的,并强调了肽聚糖前体合成对于模型生物枯草芽孢杆菌和可能其他形成内孢子的细菌中有效吞噬作用的重要性。最后,我们的工作强调了合成筛选的力量,可以揭示参与孢子形成过程的其他必需基因。

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