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Bauda, E.

Publications and source records attributed to Bauda, E..

4 recordsLinked to original sources

Differential impact of cell wall antibiotics on the Rod complex and aPBPs in Bacillus subtilis: Insights into the peptidoglycan elongation machineries

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.

microbiology↗

Atonosomes, compartments involved in membrane tension decrease

To ensure survival, cells need to buffer the effects of environmental stress on their plasma membrane, yet the structural mechanisms by which this is acutely achieved remain largely unknown. Here, we propose atonosomes as a unifying identity for a class of previously observed but enigmatic, tension-responsive, plasma membrane-derived compartments that arise across contexts of acute and chronic membrane tension loss. Leveraging unprecedented high resolution cryo-FIB-ET imaging in yeast, we show that atonosomes are complex, organelle-containing structures bounded by membranes and cell wall material, spanning hundreds of nanometers, and displaying a remarkable morphological diversity. Atonosomes form within seconds in response to reduced plasma membrane tension, and their emergence appears to require no dedicated molecular machinery, arising instead as a direct consequence of membrane biophysics. Upon formation, they recruit key membrane-associated proteins, including TORC2, Slm1, and septins. Under conditions of chronic disruption of PM homeostasis, atonosomes become constitutively present. Their stability and reversibility are further modulated by the cell wall, whose polymerization state influences atonosome dynamics. Structural conservation in fungi and ichthyosporea, demonstrates that atonosomes are a conserved stress-triggered response of cell-wall enclosed organisms. Together, these findings establish atonosomes as a novel compartment that mediates cellular responses to plasma membrane tension variation, coupling membrane remodeling and lipid homeostasis to preserve cellular integrity under stress.

cell biology↗

New assessment of teichoic acids in the cell envelope of Streptococcus pneumoniae

Teichoic acids (TA) are linear phospho-saccharidic polymers and important constituents of the cell envelope of Gram-positive bacteria, either bound to the peptidoglycan as wall teichoic acids (WTA) or to the membrane as lipoteichoic acids (LTA). The chemical composition of TA varies greatly but the presence of both WTA and LTA is highly conserved, hinting at an underlying fundamental function that is distinct from their numerous specific roles in diverse organisms. We report here the observation of a periplasmic space in the Gram-positive Streptococcus pneumoniae by cryo-electron microscopy of vitreous sections. The thickness and appearance of this region change upon deletion of genes involved in the attachment of teichoic acids, supporting the role of TA in the maintenance of a periplasmic space in Gram-positive bacteria as a possible universal function. Consequences of these mutations were further examined by super-resolved microscopy (dSTORM), following metabolic and fluorophore coupling by click-chemistry in pulse and pulse-chase experiments. This novel labeling method also enabled in-gel analysis of cell fractions, revealing that LTA-containing membranes sediment at low centrifugal forces. Owing to this easy separation approach, we were able to titrate the actual amount of TA per cell and to determine the ratio of WTA to LTA. In addition, we followed the change of TA length during growth phases, and discovered that a mutant devoid of LTA accumulates the membrane-bound polymerized TA precursor. SignificanceThe existence of a periplasmic space in Gram-positive bacteria has long been debated. The finding that compromising the attachment of teichoic acids changes the appearance and thickness of the periplasm in the pneumococcus indicates a role of these polymers in the maintenance of this space between the membrane and the cell wall. Metabolic labeling and electrophoresis showed that LTA-containing membranes are easily sedimented. This finding indicates that the LTA/WTA ratios reported in previous studies were likely underestimated, since most LTA were probably unknowingly discarded in these studies. Our method of TA analysis opens a new era in the investigation of these important and poorly known bacterial polymers and their role in the periplasmic space of Gram-positive organisms.

microbiology↗

Ultrastructural details of resistance factors of the bacterial spore revealed by in situ cryo-electron tomography

The bacterial spore owes its incredible resistance capacities to various molecular structures that protect the cell content from external aggressions. Among the determinants of resistance are the quaternary structure of the chromosome and an extracellular shell made of proteinaceous layers (the coat), the assembly of which remains poorly understood. Here, in situ cryo-electron tomography (cryo-ET) on bacteria lamellae generated by cryo-focused ion beam micromachining (cryo-FIBM) provides insights into the ultrastructural organization of Bacillus subtilis sporangia, including that of the DNA and nascent coat layers. Analysis of the reconstructed tomograms reveal that rather early during sporulation, the chromosome in the developing spore (the forespore) adopts a toroidal structure harboring 5.5-nm thick fibers. At the same stage, coat proteins at the surface of the forespore form a complex stack of amorphous or structured layers with distinct electron density, dimensions and organization. We investigated the nature of the nascent coat layers in various mutant strains using cryo-FIBM/ET and transmission electron microscopy on resin sections of freeze-substituted bacteria. Combining these two cellular electron microscopy approaches, we distinguish seven nascent coat regions with different molecular properties, and propose a model for the contribution of the morphogenetic proteins SpoIVA, SpoVID, SafA and/or CotE. Significance statementBacterial spores are dormant cells that can resist to multiple stresses, including antibiotics, detergents, irradiation and high temperatures. Such resilience is an asset when spores are used for the benefit of humans, as in the case of probiotics, or a major problem for public health, food safety or biowarfare when it comes to spores of pathogenic bacteria. In this study, we combined state-of-the-art cryo-electron tomography and conventional cellular electron microscopy to provide insights into intermediate stages of spore development. Our data reveal the intracellular reorganization of the chromosome into a toroidal fibrillar structure and the complex assembly of the multi-protein, multilayered extracellular coat, shedding light on the mechanisms by which the spore acquires its incredible resistance capacities.

microbiology↗