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Frees, D.

Publications and source records attributed to Frees, D..

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SosA inhibits cell division in Staphylococcus aureus in response to DNA damage

Inhibition of cell division is critical for cell viability under DNA damaging conditions. In bacterial cells, DNA damage induces the SOS response, a process that inhibits cell division while repairs are being made. In coccoid bacteria, such as the human pathogen Staphylococcus aureus, the process remains poorly understood. Here we have characterized an SOS-induced cell-division inhibitor, SosA, in S. aureus. We find that in contrast to the wildtype, sosA mutant cells continue division under DNA damaging conditions with decreased viability as a consequence. Conversely, overproduction of SosA leads to cell division inhibition and reduced growth. The SosA protein is localized in the bacterial membrane and mutation of an extracellular amino acid, conserved between homologs of other staphylococcal species, abolished the inhibitory activity as did truncation of the C-terminal 30 amino acids. In contrast, C-terminal truncation of 10 amino acids lead to SosA accumulation and a strong cell division inhibitory activity. A similar phenotype was observed upon expression of wildtype SosA in a mutant lacking the membrane protease, CtpA. Thus, the extracellular C-terminus of SosA is required both for cell-division inhibition and for turnover of the protein. Functional studies showed that SosA is likely to interact with one or more divisome components and, without interfering with early cell-division events, halts cell division at a point where septum formation is initiated yet being unable to progress to septum closure. Our findings provide important insights into cell-division regulation in staphylococci that may foster development of new classes of antibiotics targeting this essential process. ImportanceStaphylococcus aureus is a serious human pathogen and a model organism for cell-division studies in spherical bacteria. We show that SosA is the DNA-damage-inducible cell-division inhibitor in S. aureus that upon expression causes cell swelling and cessation of the cell cycle at a characteristic stage post septum initiation but prior to division plate completion. SosA appears to function via an extracellular activity and is likely to do so by interfering with the essential membrane-associated division proteins, while at the same time being negatively regulated by the membrane protease CtpA. This report represents the first description of the process behind cell-division inhibition in coccoid bacteria. As several pathogens are included in this category, uncovering the molecular details of SosA activity and control can lead to identification of new targets for development of valuable anti-bacterial drugs.

microbiology

The ClpX chaperone controls the Staphylococcus aureus cell cycle but can be bypassed by β-lactam antibiotics

The worldwide spread of Staphylococcus aureus strains resistant to almost all {beta}-lactam antibiotics is of major clinical concern. {beta}-lactams interfere with cross-linking of the bacterial cell wall, but the killing mechanism of this important class of antibiotics is not fully understood. Here we show that sub-lethal doses of {beta}-lactams stimulate the growth of S. aureus mutants lacking the widely conserved chaperone ClpX. S. aureus clpX mutants have a severe growth defect at temperatures below 37{degrees}C, and we reasoned that a better understanding of this growth defect could provide novel insights into how {beta}-lactam antibiotics interfere with growth of S. aureus. We demonstrate that ClpX is important for coordinating the S. aureus cell cycle, and that S. aureus cells devoid of ClpX fail to divide, or lyze spontaneously, at high frequency unless {beta}-lactams are added to the growth medium. Super-resolution imaging revealed that clpX cells display aberrant septum synthesis, and initiate daughter cell separation prior to septum completion at 30{degrees}C, but not at 37{degrees}C. FtsZ localization and dynamics were not affected in the absence of ClpX, suggesting that ClpX affects septum formation and autolytic activation downstream of Z-ring formation. Interestingly, {beta}-lactams restored septum synthesis and prevented premature autolytic splitting of clpX cells. Strikingly, inhibitors of wall teichoic acid (WTA) biosynthesis that work synergistically with {beta}-lactams to kill MRSA synthesis also rescued growth of the clpX mutant, underscoring a functional link between the PBP activity and WTA biosynthesis. The finding that {beta} -lactams can prevent lysis and restore septum synthesis of a mutant with dysregulated cell division lends support to the idea that PBPs function as coordinators of cell division and that {beta} -lactams do not kill S. aureus simply by weakening the cell wall.\n\nAuthor SummaryThe bacterium Staphylococcus aureus is a major cause of human disease, and the rapid spread of S. aureus strains that are resistant to almost all {beta}-lactam antibiotics has made treatment increasingly difficult. {beta}-lactams interfere with cross-linking of the bacterial cell wall but the killing mechanism of this important class of antibiotics is still not fully understood. Here we provide novel insight into this topic by examining a defined S. aureus mutant that has the unusual property of growing markedly better in the presence of {beta}-lactams. Without {beta}-lactams this mutant dies spontaneously at a high frequency due to premature separation of daughter cells during cell division. Cell death of the mutant can, however, be prevented either by exposure to {beta}-lactam antibiotics or by inhibiting synthesis of wall teichoic acid, a major component of the cell wall in Gram-positive bacteria with a conserved role in activation of autolytic splitting of daughter cells. The finding that the detrimental effect of {beta}-lactam antibiotics can be reversed by a mutation that affect the coordination of cell division emphasizes the idea that {beta}-lactams do not kill S. aureus simply by weakening the cell wall but rather by interference with the coordination of cell division.

microbiology