The bacterial cell wall (CW) is an essential protective barrier and the frontline of cellular interactions with the environment and also a target for numerous antimicrobial agents. Accordingly, its integrity and homeostasis are closely monitored and rapid adaptive responses by transcriptional reprogramming induce appropriate counter-measures against perturbations. Here, we report a comprehensive and comparative transcriptional profiling of the primary cell envelope stress responses (CESR), based on combining RNAseq and high-resolution tiling array studies of the Gram-positive model bacterium Bacillus subtilis exposed to a range of antimicrobial compounds that interfere with cytoplasmic, membrane-coupled or extracellular steps of peptidoglycan (PG) biosynthesis. It revealed the complexity of the CESR of B. subtilis and unraveled the contribution of extracytoplasmic function sigma factors (ECFs) and two-component signal transduction systems (TCSs) to protect the cell envelope. While membrane-anchored steps are tightly controlled, early cytoplasmic and late extracellular steps of PG biosynthesis are hardly monitored at all. The ECF σ factors σ W and particularly σ M provide a general CESR, while σ V is almost exclusively induced by lysozyme, against which it provides specific resistance. Remarkably, σ X was slightly repressed by most antibiotics, pointing towards a role in envelope homeostasis rather than CESR. It shares this role with the WalRK TCS, which balances CW growth with controlled autolysis. In contrast, all remaining TCSs are envelope stress-inducible systems. LiaRS is induced by a wide range of PG synthesis inhibitors, while the three paralogous systems BceAB, PsdRS and ApeRS are more compound-specific detoxification modules. Induction of the CssRS TCS by all antibiotics interfering with membrane-anchored steps of PG biosynthesis points towards a physiological link between CESR and secretion stress. Based on the expression signatures, a suite of CESR-specific B. subtilis whole cell biosensors were developed and carefully evaluated. This is the first comprehensive transcriptomic study focusing exclusively on the primary effects of envelope perturbances that shall provide a reference point for future studies on Gram-positive CESR.
Abstract MreB, a bacterial actin homolog and polymerizing ATPase, is central to cell-shape maintenance and cell-wall integrity. Its functions rely on its ability to assemble into dynamic, membrane-associated polymers. However, how nucleotide binding and hydrolysis, MreB-MreB contacts, and membrane association are coordinated to enable polymer assembly and disassembly remains unclear. Here, we combined genetics and live-cell microscopy with biochemical approaches to dissect these processes. Using a highly sensitive reporter of MreB activity, we identified, through a genetic screen, residues critical for MreB function in Bacillus subtilis . Subsequent extensive characterization of corresponding stable variants of the homologous Geobacillus stearothermophilus MreB revealed that ATP binding, but not ATP hydrolysis, is required for polymerization. Productive longitudinal intraprotofilament contacts are required for efficient ATP hydrolysis and enhance membrane association. Perturbations predicted to weaken lateral interprotofilament contacts altered membrane association and modulated ATPase activity. Together, these effects provide experimental evidence consistent with long-range functional coupling among the longitudinal and lateral protofilament interfaces, the distant nucleotide-binding site, and membrane association dynamics. Moreover, impaired ATP hydrolysis delays disassembly of lipid-associated polymers, indicating that hydrolysis promotes polymer turnover. These results establish key mechanistic steps coordinating ATP-driven MreB polymerization and turnover and provide a basis for a complete MreB assembly–disassembly cycle and for further elucidating how MreB dynamics contribute to cell-wall organization.
Abstract Fluorescence microscopy is central to the study of bacterial cell biology, multicellular behaviours, and host–pathogen interactions. Bright, robust and photostable labelling is required for bacterial identification, sorting and quantitative analysis, driving continuous development of state-of-the-art labelling tools. Here, we developed a multi-color fluorescent cell labelling toolkit for Gram-negative bacteria carrying the attTn7 site, using the opportunistic human pathogen Pseudomonas aeruginosa as a model. Cell labelling is achieved by constitutive chromosomal expression of genes encoding a choice of four novel fluorescent proteins, mNeonGreen, mJuniper, mLychee and mScarlet-I3, codon-optimised for P. aeruginosa . These reporters provide bright, stable fluorescence with minimal photobleaching and excellent spectral separation during long-term imaging of single cells, macrocolonies and biofilms. Chromosomal expression of mNeonGreen yielded brighter and more homogeneous labelling than expression of the same construct from a plasmid. Interestingly, multi-color labelling of macrocolonies using our constructs allowed us to uncover and monitor a reversal of cell migration within motile colonies, thus highlighting the novel dynamics of motile communities. Finally, we demonstrate their applicability in biologically relevant host-pathogen contexts by imaging both live and fixed P. aeruginosa- infected human airway epithelial cells. This versatile cell labelling platform enables reliable bacterial identification, segmentation, tracking, and quantitative fluorescence imaging across spatial and temporal scales, and is readily adaptable to most other Gram-negative bacteria as the attTn7 integration site is well conserved.
Abstract Polymerization and disassembly govern the cellular functions of cytoskeletal proteins. Canonical nucleotide-dependent polymers, including actin and microtubules, renew their nucleotide state through subunit subunit dissociation, nucleotide exchange in solution and repolymerization. Yet the assembly dynamics of the membrane-bound bacterial actin MreB remain unresolved. Here, using total internal reflection fluorescence microscopy and high-speed atomic force microscopy, we visualise Bacillus subtilis MreB assembly on supported lipid bilayers in real time. ATP binding drives polymerization into symmetrically elongating filaments, whereas ATP hydrolysis within filaments promotes disassembly. Unexpectedly, nucleotides continuously exchange within membrane-bound filaments without detectable subunit turnover, coupling filament stability to the surrounding nucleotide pool: ATP exchange stabilizes filaments, whereas ADP exchange triggers rapid fragmentation and disassembly. Monte-Carlo modelling and single-cell in vivo imaging support this mechanism. Thus, intrafilament nucleotide exchange enables MreB filaments to renew their nucleotide state without polymer turnover, revealing nucleotide-state rejuvenation as a new mode of biological polymer regulation.
Abstract Bacterial cell wall (CW), primarily composed of the biopolymer peptidoglycan, serve as essential protective barriers against external stresses and the internal turgor pressure. The peptidoglycan (PG) biosynthetic pathway encompasses sequential enzymatic reactions in the cytoplasm and in the membrane that involve critical enzymes susceptible to antibiotic targeting. Virtually each step of the pathway is the target of a known antibiotic. Antibiotic-induced inhibition of PG assembly typically weakens the sacculus, often leading to cell lysis. However, the cascade of events that follow inhibition of a specific enzyme of the pathway, and how these culminate in cell death remain largely unknown. Here, we investigated the effects on growing Bacillus subtilis cells of two categories of CW antibiotics: inhibitors of the synthesis of soluble PG precursors in the cytoplasm (fosfomycin and D-cycloserine) and inhibitors of the polymerisation and crosslinking reactions at the outer leaflet of the membrane, which incorporate newly externalised precursors into the existing network (vancomycin and penicillin). In B. subtilis, the latter reactions are catalysed along the sidewalls by the Rod complex, thought to primarily build the sacculus, and by class A penicillin-binding proteins (aPBPs), thought to add to repair it. Our findings reveal that the two antibiotic groups lead to growth arrest, sacculus thinning, and eventual cell lysis. However, while the impact of vancomycin and penicillin G is rapid, lacking morphological deformation, fosfomycin and D-cycloserine induce cell widening and bulging before lysis. During shortage of PG precursors, dysregulated PG hydrolytic activity contributes to elevated cell lysis but is not responsible of bulging. Instead, dispersed PG synthesis by aPBPs persists while the activity of the Rod system is rapidly arrested, resulting in cell rounding. We propose that this facilitates the redirection of the limited PG precursors to sites of CW repair, thereby preserving cell integrity and allowing for prolonged growth during antibiotic challenge.
The bacterial cell wall is primarily composed of peptidoglycan (PG), a polymer essential for its protective envelope function, and any defect in its synthesis or repair can potentially result in bacterial lysis. Class A Penicillin-Binding Proteins (aPBPs) and Shape, Elongation, Division, and Sporulation (SEDS) proteins are PG polymerases acting in concert to ensure bacterial cell wall growth. Here, we identify the first regulator of the SEDS protein RodA in the Gram-positive model bacterium Bacillus subtilis. In the presence of the antibiotic moenomycin, which specifically inhibits glycosyltransferase activity of aPBPs, or in a strain deleted for all four aPBPs, bacterial survival depends on the presence of the YrrS protein (renamed RagB) and can be rescued by overexpression of RodA. No effect of RagB is observed on the rodA gene expression level or on the speed of circumferentially moving RodA associated with PG elongation by the Rod complex. However, we demonstrate that RagB interacts with RodA. We propose that RagB stimulates RodA activity and becomes essential in the absence of aPBPs and in particular of the major aPBP, PBP1.
Most bacteria are encased into a load-bearing rigid framework, the cell wall (CW). The peptidoglycan (PG) layer, a network composed of glycan strands cross-linked by stem peptides, is the main component of the CW. During PG synthesis, precursors are first synthetized intracellularly, before being incorporated into the existing PG meshwork by transglycosylation (TG) and transpeptidation (TP) reactions. Covalent modifications of the PG meshwork such as amidation and acetylation participate in PG homeostasis by regulating PG-associated enzymes like PG hydrolases. Because of its essential role, PG synthesis represents a primary target for antibiotic action. Here, we investigated the effect on PG composition of antibiotics targeting intracellular and extracellular steps of PG synthesis: inhibitors of PG precursors synthesis (fosfomycin, D-cycloserine, bacitracin and tunicamycin) and TG/TP inhibitors (vancomycin and penicillin G), respectively. Our study revealed interesting correlations between crosslinking and both de-N-acetylation and amidation of the sacculus. A thorough analysis of muropeptides composition put into light an unexpected anti-correlation between the degree of PG crosslinking and accumulation of de-amidated disaccharide-tripeptide monomer subunit (M3) in the presence of TP inhibitors. We confirmed these observations by analyzing mutants of the PG synthesis pathway.
In vivo, bacterial actin MreB assembles into dynamic membrane-associated filamentous structures that exhibit circumferential motion around the cell. Current knowledge of MreB biochemical and polymerization properties in vitro remains limited and is mostly based on MreB proteins from Gram-negative species. In this study, we report the first observation of organized protofilaments by electron microscopy and the first 3D-structure of MreB from a Gram-positive bacterium. We show that Geobacillus stearothermophilus MreB forms straight pairs of protofilaments on lipid surfaces in the presence of ATP or GTP, but not in the presence of ADP, GDP or non-hydrolysable ATP analogs. We demonstrate that membrane anchoring is mediated by two spatially close short hydrophobic sequences while electrostatic interactions also contribute to lipid binding, and show that the population of membrane-bound protofilament doublets is in steady-state. In solution, protofilament doublets were not detected in any condition tested. Instead, MreB formed large sheets regardless of the bound nucleotide, albeit at a higher critical concentration. Altogether, our results indicate that both lipids and ATP are facilitators of MreB polymerization, and are consistent with a dual effect of ATP hydrolysis, in promoting both membrane binding and filaments assembly/disassembly.
Etude de l'action des antimicrobiens ciblant la paroi cellulaire chez Bacillus subtilis La paroi bactérienne constitue une enveloppe protectrice essentielle à la survie des bactéries et représente leur première ligne de défense contre le milieu extérieur. Cette paroi est constituée majoritairement de peptidoglycane (PG), un biopolymère spécifique aux cellules bactériennes. Parce qu'il est nécessaire à la survie et spécifique aux bactéries, le PG ainsi que sa voie de synthèse sont des cibles privilégiées pour des antibiotiques. Bien que les cibles moléculaires des antibiotiques inhibant la synthèse de la paroi soient connues, les conséquences de leur action sur les cellules bactériennes et la cascade d'évènements menant à la lyse restent incomprises. Comprendre ces mécanismes est crucial pour lutter contre la résistance aux antibiotiques, résistance qui représente une menace de santé publique majeure, inscrite dans les priorités de l'OMS. Ce projet de thèse a pour objectif d'identifier les conséquences de l'exposition à des antibiotiques de paroi sur la physiologie bactérienne, et la manière dont cela conduit à terme à la mort cellulaire, sur la bactérie modèle Bacillus subtilis. Deux analyses systématiques ont permis de mettre en évidence d'une part la signature transcriptomique et d'autre part les modifications chimiques et structurales induites par l'exposition à des antibiotiques ciblant la paroi. Une étude plus approfondie des machineries de synthèse de la paroi a révélé que les différents acteurs de la synthèse ne répondaient pas de la même façon à des traitements antibiotiques, révélant des différences de régulation. Enfin, une analyse détaillée de la réponse de Bacillus subtilis à la moenomycine a mis en lumière des mécanismes à l'origine de la résistance à cet antibiotique et de l'effet Eagle ou croissance paradoxale (perte de la dose-dépendance de l'inhibition de croissance en présence de fortes concentrations d'antibiotique), décrit dans la littérature mais dont les mécanismes restent inconnus. Ces travaux permettent de mieux comprendre le processus essentiel qu'est la synthèse de la paroi bactérienne et d'identifier des nouvelles pistes permettant de limiter les phénomènes de résistance aux antibiotiques.
How cells control their shape and size is a fundamental question of biology. In most bacteria, cell shape is imposed by the peptidoglycan (PG) polymeric meshwork that surrounds the cell. Thus, bacterial cell morphogenesis results from the coordinated action of the proteins assembling and degrading the PG shell. Remarkably, during steady-state growth, most bacteria maintain a defined shape along generations, suggesting that error-proof mechanisms tightly control the process. In the rod-shaped model for the Gram-positive bacterium Bacillus subtilis, the average cell length varies as a function of the growth rate, but the cell diameter remains constant throughout the cell cycle and across growth conditions. Here, in an attempt to shed light on the cellular circuits controlling bacterial cell width, we developed a screen to identify genetic determinants of cell width in B. subtilis. Using high-content screening (HCS) fluorescence microscopy and semiautomated measurement of single-cell dimensions, we screened a library of ∼4,000 single knockout mutants. We identified 13 mutations significantly altering cell diameter, in genes that belong to several functional groups. In particular, our results indicate that metabolism plays a major role in cell width control in B. subtilis. IMPORTANCE Bacterial shape is primarily dictated by the external cell wall, a vital structure that, as such, is the target of countless antibiotics. Our understanding of how bacteria synthesize and maintain this structure is therefore a cardinal question for both basic and applied research. Bacteria usually multiply from generation to generation while maintaining their progenies with rigorously identical shapes. This implies that the bacterial cells constantly monitor and maintain a set of parameters to ensure this perpetuation. Here, our study uses a large-scale microscopy approach to identify at the whole-genome level, in a model bacterium, the genes involved in the control of one of the most tightly controlled cellular parameters, the cell width.
The actin-like MreB protein is a key player of the machinery controlling the elongation and maintenance of the cell shape of most rod-shaped bacteria. This protein is known to be highly dynamic, moving along the short axis of cells, presumably reflecting the movement of cell wall synthetic machineries during the enzymatic assembly of the peptidoglycan mesh. The ability of MreB proteins to form polymers is not debated, but their structure, length, and conditions of establishment have remained unclear and the subject of conflicting reports. Here we analyze various strains of Bacillus subtilis, the model for Gram-positive bacteria, and we show that MreB forms subdiffraction-limited, less than 200 nm-long nanofilaments on average during active growth, while micron-long filaments are a consequence of artificial overaccumulation of the protein. Our results also show the absence of impact of the size of the filaments on their speed, orientation, and other dynamic properties conferring a large tolerance to B. subtilis toward the levels and consequently the lengths of MreB polymers. Our data indicate that the density of mobile filaments remains constant in various strains regardless of their MreB levels, suggesting that another factor determines this constant. IMPORTANCE The construction of the bacterial cell envelope is a fundamental topic, as it confers its integrity to bacteria and is consequently the target of numerous antibiotics. MreB is an essential protein suspected to regulate the cell wall synthetic machineries. Despite two decades of study, its localization remains the subject of controversies, its description ranging from helical filaments spanning the entire cell to small discrete entities. The true structure of these filaments is important because it impacts the model describing how the machineries building the cell wall are associated, how they are coordinated at the scale of the entire cell, and how MreB mediates this regulation. Our results shed light on this debate, revealing the size of native filaments in B. subtilis during growth. They argue against models where MreB filament size directly affects the speed of synthesis of the cell wall and where MreB would coordinate distant machineries along the side wall.
MreB proteins are actin homologs present in nonspherical bacteria. They assemble into membrane-associated discrete filamentous structures that exhibit different dynamic behaviors along the bacterial sidewalls. Total internal reflection fluorescence (TIRF) microscopy, a sensitive method for studying molecular events at cell surfaces with high contrast and temporal resolution, is a method of choice to characterize the localization and dynamics of cortical MreB assemblies in vivo. This chapter describes the methods for visualizing fluorescently tagged MreB proteins in live Bacillus subtilis cells. We detail how to (1) grow B. subtilis strains for reproducible TIRF observations, (2) immobilize cells on agarose pads and (3) in CellASIC® microfluidic plates, and (4) acquire TIRF images and time lapses.
Despite decades of investigation of genetic transformation in the model Gram-positive bacterium Bacillus subtilis , the factors responsible for exogenous DNA binding at the surface of competent cells remain to be identified. Here, we report that wall teichoic acids (WTAs), cell wall-anchored anionic glycopolymers associated to numerous critical functions in Gram-positive bacteria, are involved in this initial step of transformation. Using a combination of cell wall-targeting antibiotics and fluorescence microscopy, we show that competence-specific WTAs are produced and specifically localized in the competent cells to mediate DNA binding at the proximity of the transformation apparatus. Furthermore, we propose that TuaH, a putative glycosyl transferase induced during competence, modifies competence-induced WTAs in order to promote (directly or indirectly) DNA binding. On the basis of our results and previous knowledge in the field, we propose a model for DNA binding and transport during genetic transformation in B. subtilis .
How cells control their shape and size is a long-standing question in cell biology. Many rod-shaped bacteria elongate their sidewalls by the action of cell wall synthesizing machineries that are associated to actin-like MreB cortical patches. However, little is known about how elongation is regulated to enable varied growth rates and sizes. Here we use total internal reflection fluorescence microscopy and single-particle tracking to visualize MreB isoforms, as a proxy for cell wall synthesis, in Bacillus subtilis and Escherichia coli cells growing in different media and during nutrient upshift. We find that these two model organisms appear to use orthogonal strategies to adapt to growth regime variations: B. subtilis regulates MreB patch speed, while E. coli may mainly regulate the production capacity of MreB-associated cell wall machineries. We present numerical models that link MreB-mediated sidewall synthesis and cell elongation, and argue that the distinct regulatory mechanism employed might reflect the different cell wall integrity constraints in Gram-positive and Gram-negative bacteria.
B. subtilis adapts to changing environments by reprogramming its genetic expression through a variety of transcriptional regulators from the global transition state regulators that allow a complete resetting of the cell genetic expression, to stress specific regulators controlling only a limited number of key genes required for optimal adaptation. Among them, MarR-type transcriptional regulators are known to respond to a variety of stresses including antibiotics or oxidative stress, and to control catabolic or virulence gene expression. Here we report the characterization of the ydcFGH operon of B. subtilis, containing a putative MarR-type transcriptional regulator. Using a combination of molecular genetics and high-throughput approaches, we show that this regulator, renamed PamR, controls directly its own expression and influence the expression of large sets of prophage-related and metabolic genes. The extent of the regulon impacted by PamR suggests that this regulator reprograms the metabolic landscape of B. subtilis in response to a yet unknown signal.
Many icosahedral viruses use a specialized portal vertex to control genome encapsidation and release from the viral capsid. In tailed bacteriophages, the portal system is connected to a tail structure that provides the pipeline for genome delivery to the host cell. We report the first, to our knowledge, subnanometer structures of the complete portal-phage tail interface that mimic the states before and after DNA release during phage infection. They uncover structural rearrangements associated with intimate protein-DNA interactions. The portal protein gp6 of bacteriophage SPP1 undergoes a concerted reorganization of the structural elements of its central channel during interaction with DNA. A network of protein-protein interactions primes consecutive binding of proteins gp15 and gp16 to extend and close the channel. This critical step that prevents genome leakage from the capsid is achieved by a previously unidentified allosteric mechanism: gp16 binding to two different regions of gp15 drives correct positioning and folding of an inner gp16 loop to interact with equivalent loops of the other gp16 subunits. Together, these loops build a plug that closes the channel. Gp16 then fastens the tail to yield the infectious virion. The gatekeeper system opens for viral genome exit at the beginning of infection but recloses afterward, suggesting a molecular diaphragm-like mechanism to control DNA efflux. The mechanisms described here, controlling the essential steps of phage genome movements during virus assembly and infection, are likely to be conserved among long-tailed phages, the largest group of viruses in the Biosphere.
The large terminase subunit is a central component of the genome packaging motor from tailed bacteriophages and herpes viruses. This two-domain enzyme has an N-terminal ATPase activity that fuels DNA translocation during packaging and a C-terminal nuclease activity required for initiation and termination of the packaging cycle. Here, we report that bacteriophage SPP1 large terminase (gp2) is a metal-dependent nuclease whose stability and activity are strongly and preferentially enhanced by Mn2+ ions. Mutation of conserved residues that coordinate Mn2+ ions in the nuclease catalytic site affect the metal-induced gp2 stabilization and impair both gp2-specific cleavage at the packaging initiation site pac and unspecific nuclease activity. Several of these mutations block also DNA encapsidation without affecting ATP hydrolysis or gp2 C-terminus binding to the procapsid portal vertex. The data are consistent with a mechanism in which the nuclease domain bound to the portal switches between nuclease activity and a coordinated action with the ATPase domain for DNA translocation. This switch of activities of the nuclease domain is critical to achieve the viral chromosome packaging cycle.