Divisome

Divisome
  • 文章类型: Journal Article
    肽聚糖是细菌细胞壁的主要成分。其作为聚合物大厦的完整性对细菌生存至关重要,因此,它是抗生素的突出目标。肽聚糖是动态交联聚合物,其经历恒定的生物合成和周转。铜绿假单胞菌的可溶性裂解转糖基酶(Slt)是参与这种动态周转的周质酶。在活细菌中使用琥珀密码子抑制方法,我们将荧光发色团掺入Slt的结构中。荧光显微镜显示,Slt填充了周质空间的长度,并集中在子细胞中的分隔位点。该浓度在细胞分离后持续存在。琥珀密码子抑制方法也用于掺入光亲和氨基酸以捕获伴侣蛋白。基于质谱的蛋白质组学在体内鉴定了Slt的12个伴侣。这些蛋白质组学实验用体外下拉分析补充。确定了另外20个合作伙伴。我们克隆了基因并纯化至同质性22个鉴定的伴侣。生物物理表征证实所有都是真正的Slt粘合剂。Slt的蛋白质伴侣的身份跨越不同的周质蛋白质家族,包括已知存在于分裂体中的几种蛋白质。值得注意的周质伴侣(KD<0.5μM)包括PBPs(PBP1a,KD=0.07μM;PBP5=0.4μM);其他裂解转糖基转移酶(SltB2,KD=0.09μM;RlpA,KD=0.4μM);VI型分泌系统效应子(Tse5,KD=0.3μM);和用于藻酸盐生物合成的调节蛋白酶(AlgO,KD<0.4μM)。鉴于其相互作用的功能广度,Slt被概念化为周质内的中心蛋白。
    Peptidoglycan is a major constituent of the bacterial cell wall. Its integrity as a polymeric edifice is critical for bacterial survival and, as such, it is a preeminent target for antibiotics. The peptidoglycan is a dynamic crosslinked polymer that undergoes constant biosynthesis and turnover. The soluble lytic transglycosylase (Slt) of Pseudomonas aeruginosa is a periplasmic enzyme involved in this dynamic turnover. Using amber-codon-suppression methodology in live bacteria, we incorporated a fluorescent chromophore into the structure of Slt. Fluorescent microscopy shows that Slt populates the length of the periplasmic space and concentrates at the sites of septation in daughter cells. This concentration persists after separation of the cells. Amber-codon-suppression methodology was also used to incorporate a photoaffinity amino acid for the capture of partner proteins. Mass-spectrometry-based proteomics identified 12 partners for Slt in vivo. These proteomics experiments were complemented with in vitro pulldown analyses. Twenty additional partners were identified. We cloned the genes and purified to homogeneity 22 identified partners. Biophysical characterization confirmed all as bona fide Slt binders. The identities of the protein partners of Slt span disparate periplasmic protein families, inclusive of several proteins known to be present in the divisome. Notable periplasmic partners (KD < 0.5 μM) include PBPs (PBP1a, KD = 0.07 μM; PBP5 = 0.4 μM); other lytic transglycosylases (SltB2, KD = 0.09 μM; RlpA, KD = 0.4 μM); a type VI secretion system effector (Tse5, KD = 0.3 μM); and a regulatory protease for alginate biosynthesis (AlgO, KD < 0.4 μM). In light of the functional breadth of its interactome, Slt is conceptualized as a hub protein within the periplasm.
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  • 文章类型: Journal Article
    大多数细菌通过一个高度保守的过程分裂,称为二元裂变,其中子细胞的对称生长和在中间细胞的肽聚糖的合成以实现胞质分裂。在这个过程中,亲代细胞复制其染色体DNA并将复制的染色体分离到子细胞中。调节二元裂变的机制已经在几种模式生物中得到了广泛的研究,包括大肠杆菌,枯草芽孢杆菌,和crescentus。这些分析揭示了称为分裂体的多蛋白复合物在中间细胞处形成,以使肽聚糖在分裂过程中合成和分离。此外,杆状细菌形成称为延伸体的多蛋白复合物,该复合物驱动维持杆状和分裂前细胞延长所需的侧壁肽聚糖合成。为了适应它们的细胞内生态位,这里讨论的专性细胞内细菌已经消除了大肠杆菌中二元裂变所必需的一个到几个分裂基因产物。此外,编码延伸体成分的基因,这些细菌大部分是随着杆状细菌进化成球形生物而丢失的,在某些球形专性细胞内细菌经历的还原进化过程中被保留。尽管调节专性细胞内细菌分裂的精确分子机制仍不明确,这里总结的研究表明,专性细胞内细菌在其细胞分裂过程中表现出显著的可塑性。
    Most bacteria divide through a highly conserved process called binary fission, in which there is symmetric growth of daughter cells and the synthesis of peptidoglycan at the mid-cell to enable cytokinesis. During this process, the parental cell replicates its chromosomal DNA and segregates replicated chromosomes into the daughter cells. The mechanisms that regulate binary fission have been extensively studied in several model organisms, including Eschericia coli, Bacillus subtilis, and Caulobacter crescentus. These analyses have revealed that a multi-protein complex called the divisome forms at the mid-cell to enable peptidoglycan synthesis and septation during division. In addition, rod-shaped bacteria form a multi-protein complex called the elongasome that drives sidewall peptidoglycan synthesis necessary for the maintenance of rod shape and the lengthening of the cell prior to division. In adapting to their intracellular niche, the obligate intracellular bacteria discussed here have eliminated one to several of the divisome gene products essential for binary fission in E. coli. In addition, genes that encode components of the elongasome, which were mostly lost as rod-shaped bacteria evolved into coccoid organisms, have been retained during the reductive evolutionary process that some coccoid obligate intracellular bacteria have undergone. Although the precise molecular mechanisms that regulate the division of obligate intracellular bacteria remain undefined, the studies summarized here indicate that obligate intracellular bacteria exhibit remarkable plasticity in their cell division processes.
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  • 文章类型: Journal Article
    球形细菌金黄色葡萄球菌由于其明显简单的细胞周期而经常用作形态发生的模型。金黄色葡萄球菌具有许多细胞分裂蛋白,它们在细菌中保守,暗示了共同的功能。然而,尽管深入研究,我们仍然不知道其中许多组件的作用。这里,我们已经检查了副同源物DivIVA和GpsB在金黄色葡萄球菌细胞周期中的功能。缺乏gpsB的细胞比野生型细胞表现出更球形的表型,这与外周细胞壁肽聚糖合成的减少有关。这与青霉素结合蛋白在发育中隔的定位增加有关,特别是PBPs2和3。我们的结果强调了GpsB作为金黄色葡萄球菌细胞形态发生的明显调节因子的作用。
    The spheroid bacterium Staphylococcus aureus is often used as a model of morphogenesis due to its apparently simple cell cycle. S. aureus has many cell division proteins that are conserved across bacteria alluding to common functions. However, despite intensive study, we still do not know the roles of many of these components. Here, we have examined the functions of the paralogues DivIVA and GpsB in the S. aureus cell cycle. Cells lacking gpsB display a more spherical phenotype than the wild-type cells, which is associated with a decrease in peripheral cell wall peptidoglycan synthesis. This correlates with increased localization of penicillin-binding proteins at the developing septum, notably PBPs 2 and 3. Our results highlight the role of GpsB as an apparent regulator of cell morphogenesis in S. aureus.
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  • 文章类型: Journal Article
    铜绿假单胞菌的11种裂解性转糖基酶在细胞壁肽聚糖的周转中具有重叠的活性。稀有脂蛋白A(RlpA)在11个中有所不同,因为它仅使用缺乏肽茎的肽聚糖。RlpA及其相互作用组在铜绿假单胞菌内的空间定位是未知的。我们在rlpA基因中的位点处抑制引入的琥珀色密码子,以引入非天然氨基酸Nζ-[(2-叠氮基乙氧基)羰基]-1-赖氨酸(化合物1)和Nζ-[[[3-(3-甲基-3H-二氮杂嘧啶-3-基)丙基]氨基]羰基]-1-赖氨酸(化合物2)。在活的铜绿假单胞菌中,使用应变促进的炔-叠氮化物环加成对将化合物1掺入其序列中的全长RlpA进行荧光标记,并通过荧光显微镜检查。RlpA沿着细菌的侧壁长度以低水平存在,在复制细菌的新生隔层中含量较高。在完整的铜绿假单胞菌中,在其序列中具有化合物2的全长RlpA的UV光解产生了瞬时反应性卡宾,参与邻近蛋白质的光亲和捕获。鉴定出13种蛋白质。这些蛋白质中的三种-PBP1a,PBP5和MreB-是细菌分裂体的成员。使用非规范氨基酸掺入的互补方法,光亲和邻近分析,和荧光显微镜证实了铜绿假单胞菌RlpA酶的主要间隔位置,作为与分裂相关的活动。这一成就增加了对这些方法用于鉴定细菌蛋白质的细胞内定位的价值的新兴认识。本文受版权保护。保留所有权利。
    The 11 lytic transglycosylases of Pseudomonas aeruginosa have overlapping activities in the turnover of the cell-wall peptidoglycan. Rare lipoprotein A (RlpA) is distinct among the 11 by its use of only peptidoglycan lacking peptide stems. The spatial localization of RlpA and its interactome within P. aeruginosa are unknown. We employed suppression of introduced amber codons at sites in the rlpA gene for the introduction of the unnatural-amino-acids Νζ -[(2-azidoethoxy)carbonyl]-l-lysine (compound 1) and Nζ -[[[3-(3-methyl-3H-diazirin-3-yl)propyl]amino]carbonyl]-l-lysine (compound 2). In live P. aeruginosa, full-length RlpA incorporating compound 1 into its sequence was fluorescently tagged using strained-promoted alkyne-azide cycloaddition and examined by fluorescence microscopy. RlpA is present at low levels along the sidewall length of the bacterium, and at higher levels at the nascent septa of replicating bacteria. In intact P. aeruginosa, UV photolysis of full-length RlpA having compound 2 within its sequence generated a transient reactive carbene, which engaged in photoaffinity capture of neighboring proteins. Thirteen proteins were identified. Three of these proteins-PBP1a, PBP5, and MreB-are members of the bacterial divisome. The use of the complementary methodologies of non-canonical amino-acid incorporation, photoaffinity proximity analysis, and fluorescent microscopy confirm a dominant septal location for the RlpA enzyme of P. aeruginosa, as a divisome-associated activity. This accomplishment adds to the emerging recognition of the value of these methodologies for identification of the intracellular localization of bacterial proteins.
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  • 文章类型: Journal Article
    本文涉及个人的回忆,并从上个世纪六十年代阿姆斯特丹大学电子显微镜的起源开始。新颖的固定和包埋技术标志着光学显微镜看不到的内部细菌结构的发现。冻结断裂技术保留了特殊的地位。通过冷冻压裂化学固定的细胞,事实证明,可以检查固定的形态效应。从那里开始,焦点从细菌结构转移到它们的细胞周期。这引起了细菌生理学和稳态生长与电子显微镜的结合。[3H]Dap脉冲的电子显微镜放射自显影显示,根据带状生长模型(带有包膜附着的DNA),复制DNA的分离无法进行。这刺激了我们进一步研究囊,肽聚糖大分子。特别是,我们重点研究了青霉素结合蛋白如PBP2和PBP3的参与及其在分裂中的作用.添加氨曲南(PBP3的抑制剂)可阻止正在进行的分裂,但不会引发新的分裂。PBP3非依赖性肽聚糖合成(PIPS)似乎先于PBP3依赖性步骤。讨论了PIPS可能的化学性质。
    This article relates personal recollections and starts with the origin of electron microscopy in the sixties of the previous century at the University of Amsterdam. Novel fixation and embedding techniques marked the discovery of the internal bacterial structures not visible by light microscopy. A special status became reserved for the freeze-fracture technique. By freeze-fracturing chemically fixed cells, it proved possible to examine the morphological effects of fixation. From there on, the focus switched from bacterial structure as such to their cell cycle. This invoked bacterial physiology and steady-state growth combined with electron microscopy. Electron-microscopic autoradiography with pulses of [3H] Dap revealed that segregation of replicating DNA cannot proceed according to a model of zonal growth (with envelope-attached DNA). This stimulated us to further investigate the sacculus, the peptidoglycan macromolecule. In particular, we focused on the involvement of penicillin-binding proteins such as PBP2 and PBP3, and their role in division. Adding aztreonam (an inhibitor of PBP3) blocked ongoing divisions but not the initiation of new ones. A PBP3-independent peptidoglycan synthesis (PIPS) appeared to precede a PBP3-dependent step. The possible chemical nature of PIPS is discussed.
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  • 文章类型: Journal Article
    FtsQBL是位于细菌分裂体组装中途的重要分子复合物。为了可视化和理解它的结构,以及它的膜锚定的后果,我们使用深度学习预测工具产生了大肠杆菌复合体的模型,AlphaFold2.将异源三聚体模型插入3脂质模型膜中,并进行500ns原子分子动力学模拟。该模型质量极好,捕获了大多数实验得出的结构特征,在二级结构和侧链水平。该模型由所有三种蛋白质的C末端区域贡献的独特互锁模块组成。FtsB和FtsL的功能上重要的收缩控制域残基位于距膜表面约43-49的固定垂直位置。虽然所有三种蛋白质的周质结构域都是明确的和刚性的,每个的单个跨膜螺旋都是柔性的,它们的集体扭曲和弯曲有助于大多数结构变化,根据主成分分析。仅考虑FtsQ,相对于其复合状态,该蛋白质在其自由状态下更灵活-最大的结构变化位于跨膜螺旋和α结构域之间的肘部。FtsQ和FtsL的无序N端结构域与内膜的细胞质表面缔合,而不是自由地进入溶剂。接触网络分析强调了FtsQBL中互锁三聚体模块的形成,在调节复合体的整体结构中起着核心作用。
    The FtsQBL is an essential molecular complex sitting midway through bacterial divisome assembly. To visualize and understand its structure, and the consequences of its membrane anchorage, we produced a model of the E. coli complex using the deep-learning prediction utility, AlphaFold 2. The heterotrimeric model was inserted into a 3-lipid model membrane and subjected to a 500-ns atomistic molecular dynamics simulation. The model is superb in quality and captures most experimentally derived structural features, at both the secondary structure and the side-chain levels. The model consists of a uniquely interlocking module contributed by the C-terminal regions of all three proteins. The functionally important constriction control domain residues of FtsB and FtsL are located at a fixed vertical position of ∼43-49 Å from the membrane surface. While the periplasmic domains of all three proteins are well-defined and rigid, the single transmembrane helices of each are flexible and their collective twisting and bending contribute to most structural variations, according to principal component analysis. Considering FtsQ only, the protein is more flexible in its free state relative to its complexed state-with the biggest structural changes located at the elbow between the transmembrane helix and the α-domain. The disordered N-terminal domains of FtsQ and FtsL associate with the cytoplasmic surface of the inner membrane instead of freely venturing into the solvent. Contact network analysis highlighted the formation of the interlocking trimeric module in FtsQBL as playing a central role in mediating the overall structure of the complex.
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  • 文章类型: Journal Article
    细胞分裂是细菌细胞分裂的重要过程,它涉及超过25种必需/非必需细胞分裂蛋白,这些蛋白形成称为分裂体的蛋白质复合物。分裂体的核心是蛋白质FtsB和FtsL与FtsQ结合形成复杂的FtsQBL,这有助于将早期蛋白质与晚期蛋白质联系起来。FtsQBL复合物作为跨细菌的组分是高度保守的。像霍乱弧菌这样的病原体,溃疡分枝杆菌,麻风分枝杆菌,沙眼衣原体是细菌性被忽视的热带病霍乱的病原体,布鲁里溃疡,麻风病,和沙眼,分别,其中一些似乎缺乏一些FtsQBL复杂蛋白的已知同源物。在没有实验表征的情况下,由于资源不足或基因组学产生的新序列大量增加,传统上,功能注释是通过与已知同源物的序列相似性来推断的。随着准确的蛋白质结构预测方法的出现,折叠水平和蛋白质相互作用水平的特征均可用于鉴定使用序列相似性方法无法明确鉴定的直向同源物。使用FtsQBL复合蛋白作为案例研究,我们使用ProfileHiddenMarkov模型和使用AlphaFold预测的结构报告潜在的远程同源物。预测的直向同源结构显示与相应的大肠杆菌蛋白的构象相似性,而与它们的序列相似性水平无关。Alphafold多聚体用于将远程同源物表征为FtsB或FtsL,当它们在序列或结构水平上都无法充分区分时,因为它们与FtsQ和FtsW的相互作用在它们的功能中起着至关重要的作用。然后分析结构以鉴定与其同源物一致的蛋白质的功能关键区域,并描绘可能用于抑制剂发现的区域。
    Cytokinesis is an essential process in bacterial cell division, and it involves more than 25 essential/non-essential cell division proteins that form a protein complex known as a divisome. Central to the divisome are the proteins FtsB and FtsL binding to FtsQ to form a complex FtsQBL, which helps link the early proteins with late proteins. The FtsQBL complex is highly conserved as a component across bacteria. Pathogens like Vibrio cholerae, Mycobacterium ulcerans, Mycobacterium leprae, and Chlamydia trachomatis are the causative agents of the bacterial Neglected Tropical Diseases Cholera, Buruli ulcer, Leprosy, and Trachoma, respectively, some of which seemingly lack known homologs for some of the FtsQBL complex proteins. In the absence of experimental characterization, either due to insufficient resources or the massive increase in novel sequences generated from genomics, functional annotation is traditionally inferred by sequence similarity to a known homolog. With the advent of accurate protein structure prediction methods, features both at the fold level and at the protein interaction level can be used to identify orthologs that cannot be unambiguously identified using sequence similarity methods. Using the FtsQBL complex proteins as a case study, we report potential remote homologs using Profile Hidden Markov models and structures predicted using AlphaFold. Predicted ortholog structures show conformational similarity with corresponding E. coli proteins irrespective of their level of sequence similarity. Alphafold multimer was used to characterize remote homologs as FtsB or FtsL, when they were not sufficiently distinguishable at both the sequence or structure level, as their interactions with FtsQ and FtsW play a crucial role in their function. The structures were then analyzed to identify functionally critical regions of the proteins consistent with their homologs and delineate regions potentially useful for inhibitor discovery.
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  • 文章类型: Journal Article
    必要的膜复合物FtsE/FtsX(FtsEX),属于ABC转运蛋白超家族,广泛存在于细菌中,在一些关键的细胞壁重塑过程中发挥相关功能,如细胞分裂,伸长率,或孢子形成。FtsEX通过将蛋白质募集到分裂体装置并通过调节子细胞分离所需的细胞壁水解酶的裂解活性而发挥双重作用。有趣的是,FtsEX不作为转运蛋白,但使用FtsE的ATPase活性从细胞溶胶机械传递信号,穿过膜,激活附着的水解酶的周质。虽然这种机制的完整分子细节尚不清楚,最近有证据报告阐明了这个复杂系统的基本方面。在本章中,我们将介绍有关该主题的最新结构进展。FtsE的三维结构,FtsX,一些裂解酶或它们的同源调节剂揭示了一个意想不到的场景,其中一系列微妙的分子间相互作用,在不同的细菌属之间保守,可能是这种调节机制的核心,可以在这个中心过程的空间和时间上提供精确的控制,以帮助细菌生存。
    The essential membrane complex FtsE/FtsX (FtsEX), belonging to the ABC transporter superfamily and widespread among bacteria, plays a relevant function in some crucial cell wall remodeling processes such as cell division, elongation, or sporulation. FtsEX plays a double role by recruiting proteins to the divisome apparatus and by regulating lytic activity of the cell wall hydrolases required for daughter cell separation. Interestingly, FtsEX does not act as a transporter but uses the ATPase activity of FtsE to mechanically transmit a signal from the cytosol, through the membrane, to the periplasm that activates the attached hydrolases. While the complete molecular details of such mechanism are not yet known, evidence has been recently reported that clarify essential aspects of this complex system. In this chapter we will present recent structural advances on this topic. The three-dimensional structure of FtsE, FtsX, and some of the lytic enzymes or their cognate regulators revealed an unexpected scenario in which a delicate set of intermolecular interactions, conserved among different bacterial genera, could be at the core of this regulatory mechanism providing exquisite control in both space and time of this central process to assist bacterial survival.
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  • 文章类型: Journal Article
    肽聚糖隔膜的合成是细菌裂变的基本部分,由称为分裂体的多蛋白动态复合物驱动。FtsW和FtsI是合成肽聚糖隔膜的必需蛋白,受调节性FtsBLQ亚复合物和激活剂FtsN控制。然而,他们的监管模式尚未详细揭示。详细了解这一过程可能有助于开发新的化合物来对抗抗生素耐药性的上升。在这次审查中,总结和讨论了有关间隔肽聚糖合成调节的最新数据。根据结构模型和收集的数据,揭示了FtsWI内部和与调节因子之间的多种推定相互作用。这阐述并支持了早期提出的模型,该模型描述了通过这些相互作用稳定的间隔肽聚糖合成复合物的活性和非活性构象。此外,提出了新合成的肽聚糖和合成复合物的空间组织的新模型。总的来说,更新后的模型提出了决定间隔肽聚糖合成状态的几种变构相互作用之间的平衡。
    The synthesis of a peptidoglycan septum is a fundamental part of bacterial fission and is driven by a multiprotein dynamic complex called the divisome. FtsW and FtsI are essential proteins that synthesize the peptidoglycan septum and are controlled by the regulatory FtsBLQ subcomplex and the activator FtsN. However, their mode of regulation has not yet been uncovered in detail. Understanding this process in detail may enable the development of new compounds to combat the rise in antibiotic resistance. In this review, recent data on the regulation of septal peptidoglycan synthesis is summarized and discussed. Based on structural models and the collected data, multiple putative interactions within FtsWI and with regulators are uncovered. This elaborates on and supports an earlier proposed model that describes active and inactive conformations of the septal peptidoglycan synthesis complex that are stabilized by these interactions. Furthermore, a new model on the spatial organization of the newly synthesized peptidoglycan and the synthesis complex is presented. Overall, the updated model proposes a balance between several allosteric interactions that determine the state of septal peptidoglycan synthesis.
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  • 文章类型: Journal Article
    几十年的研究,大部分在大肠杆菌中,对细菌细胞分裂有了丰富的见解。这里,我们提供了大肠杆菌部门机制的概述,重点是最近的发现。我们从一个简短的历史视角开始研究FtsZ的发现,在细菌和古细菌中分裂所必需的微管蛋白同源物。然后我们讨论分裂的组装,依赖于FtsZ的多蛋白平台,在中间细胞间隔部位。不仅仅是脚手架,聚合物FtsZ的动力学特性确保了间隔肽聚糖的有效和均匀合成。接下来,我们描述了细胞壁的重塑,细胞包膜的内陷,和分裂装置的拆卸,最终将母细胞分裂成两个子细胞。我们通过强调细胞分裂领域的一些悬而未决的问题来总结这篇综述,强调还有很多东西有待发现,甚至在像大肠杆菌一样被广泛研究的生物体中。
    Decades of research, much of it in Escherichia coli, have yielded a wealth of insight into bacterial cell division. Here, we provide an overview of the E. coli division machinery with an emphasis on recent findings. We begin with a short historical perspective into the discovery of FtsZ, the tubulin homolog that is essential for division in bacteria and archaea. We then discuss assembly of the divisome, an FtsZ-dependent multiprotein platform, at the midcell septal site. Not simply a scaffold, the dynamic properties of polymeric FtsZ ensure the efficient and uniform synthesis of septal peptidoglycan. Next, we describe the remodeling of the cell wall, invagination of the cell envelope, and disassembly of the division apparatus culminating in scission of the mother cell into two daughter cells. We conclude this review by highlighting some of the open questions in the cell division field, emphasizing that much remains to be discovered, even in an organism as extensively studied as E. coli.
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