DivIVA 控制肺炎链球菌隔膜分裂和细胞伸长的动态。

IF 5.1 1区 生物学 Q1 MICROBIOLOGY mBio Pub Date : 2024-10-16 Epub Date: 2024-09-17 DOI:10.1128/mbio.01311-24
Jennyfer Trouve, André Zapun, Laure Bellard, Dimitri Juillot, Anais Pelletier, Celine Freton, Morgane Baudoin, Rut Carballido-Lopez, Nathalie Campo, Yung-Sing Wong, Christophe Grangeasse, Cecile Morlot
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引用次数: 0

摘要

细菌的形状和分裂取决于细胞壁组装的动态,这涉及肽聚糖的有序合成和裂解。在卵球菌中,这些过程在具有纳米尺寸的环形细胞中间区域内协调进行。更确切地说,由分裂体合成的横壁被分裂成侧壁,侧壁的扩张是由伸长体插入所谓的外周肽聚糖来保证的。因此,裂隙和外周肽聚糖的合成是卵球菌细胞分裂和伸长的关键重塑事件。众所周知,结构 DivIVA 蛋白是这些过程的主要调控因子,但它的作用模式仍然未知。在这里,我们整合了基于点击化学的肽聚糖标记、直接随机光学重建显微镜、硅建模以及外荧光和刺激发射耗竭显微镜,研究 DivIVA 在肺炎链球菌细胞形态发生中的作用。我们的研究揭示了细胞周期中肽聚糖重塑的两个不同阶段,它们受 DivIVA 的不同控制。特别是,我们发现 DivIVA 可确保分裂点周围均匀的隔膜裂解和外周肽聚糖合成,并在整个细胞周期中维持它们。我们的数据还表明,DivIVA 会影响伸长体和 A 类青霉素结合蛋白对细胞伸长的贡献。我们还报告了 DivIVA 在隔膜两侧的位置,这与它对负弯曲膜的已知亲和力相一致。最后,我们利用这些新观察结果提供的机会,对这一关键形态发生蛋白的作用机制提出了假设。重要意义这项研究综合利用点击化学、先进的显微镜和计算建模方法,揭示了支配细菌生长和分裂的基本过程。该研究探讨了人类机会性病原体肺炎链球菌的细胞壁合成机制,肺炎链球菌是一系列疾病(中耳炎、肺炎、脑膜炎、败血症)的罪魁祸首,每年导致全球一百万人死亡。这种细菌属于卵球菌形态组,其中包括许多链球菌和肠球菌病原体。在这项研究中,我们剖析了 DivIVA 的功能,DivIVA 是一种结构蛋白,参与革兰氏阳性细菌的细胞分裂、形态发生和染色体分配。这项研究揭示了 DivIVA 在肺炎球菌细胞周期中协调细胞分裂和伸长的作用。它不仅加深了我们对卵球菌如何增殖的理解,而且还提供了一个机会,让我们考虑 DivIVA 如何充当特定膜区域的支架和传感器,从而参与各种细胞周期过程。
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DivIVA controls the dynamics of septum splitting and cell elongation in Streptococcus pneumoniae.

Bacterial shape and division rely on the dynamics of cell wall assembly, which involves regulated synthesis and cleavage of the peptidoglycan. In ovococci, these processes are coordinated within an annular mid-cell region with nanometric dimensions. More precisely, the cross-wall synthesized by the divisome is split to generate a lateral wall, whose expansion is insured by the insertion of the so-called peripheral peptidoglycan by the elongasome. Septum cleavage and peripheral peptidoglycan synthesis are, thus, crucial remodeling events for ovococcal cell division and elongation. The structural DivIVA protein has long been known as a major regulator of these processes, but its mode of action remains unknown. Here, we integrate click chemistry-based peptidoglycan labeling, direct stochastic optical reconstruction microscopy, and in silico modeling, as well as epifluorescence and stimulated emission depletion microscopy to investigate the role of DivIVA in Streptococcus pneumoniae cell morphogenesis. Our work reveals two distinct phases of peptidoglycan remodeling during the cell cycle that are differentially controlled by DivIVA. In particular, we show that DivIVA ensures homogeneous septum cleavage and peripheral peptidoglycan synthesis around the division site and their maintenance throughout the cell cycle. Our data additionally suggest that DivIVA impacts the contribution of the elongasome and class A penicillin-binding proteins to cell elongation. We also report the position of DivIVA on either side of the septum, consistent with its known affinity for negatively curved membranes. Finally, we take the opportunity provided by these new observations to propose hypotheses for the mechanism of action of this key morphogenetic protein.IMPORTANCEThis study sheds light on fundamental processes governing bacterial growth and division, using integrated click chemistry, advanced microscopy, and computational modeling approaches. It addresses cell wall synthesis mechanisms in the opportunistic human pathogen Streptococcus pneumoniae, responsible for a range of illnesses (otitis, pneumonia, meningitis, septicemia) and for one million deaths every year worldwide. This bacterium belongs to the morphological group of ovococci, which includes many streptococcal and enterococcal pathogens. In this study, we have dissected the function of DivIVA, which is a structural protein involved in cell division, morphogenesis, and chromosome partitioning in Gram-positive bacteria. This work unveils the role of DivIVA in the orchestration of cell division and elongation along the pneumococcal cell cycle. It not only enhances our understanding of how ovoid bacteria proliferate but also offers the opportunity to consider how DivIVA might serve as a scaffold and sensor for particular membrane regions, thereby participating in various cell cycle processes.

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来源期刊
mBio
mBio MICROBIOLOGY-
CiteScore
10.50
自引率
3.10%
发文量
762
审稿时长
1 months
期刊介绍: mBio® is ASM''s first broad-scope, online-only, open access journal. mBio offers streamlined review and publication of the best research in microbiology and allied fields.
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