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Marli, M. T.

Publications and source records attributed to Marli, M. T..

4 recordsLinked to original sources

Cell splitting in Staphylococcus aureus is controlled by an adaptor protein facilitating degradation of a peptidoglycan hydrolase

Regulated protein degradation by Clp proteases is a highly conserved post-translational control mechanism in bacteria. In Staphylococcus aureus, the ClpXP complex targets the peptidoglycan hydrolase Sle1, maintaining a tightly regulated balance between peptidoglycan biosynthesis and hydrolysis, which is required to ensure proper cell splitting without compromising cell integrity. {beta}-lactams antibiotics disturb this balance, leading to their bactericidal effects. The mechanism underlying the specific targeting of Sle1 by the conserved ClpXP complex remains unknown. From a genome-wide screen for determinants of penicillin G susceptibility in S. aureus, we here identify the uncharacterized protein CxaR (for ClpXP-associated autolytic regulator). Growth defects, premature cell splitting, and increased cell lysis were observed in the absence of CxaR. Interestingly, these defects were mitigated by sublethal concentrations of {beta}-lactams. Through sequencing cxaR suppressor mutants, followed by immunoblotting, we show that the cxaR phenotypes are caused by excessive Sle1 accumulation. Indeed, exposure to {beta}-lactams reduces Sle1 levels, thereby rescuing the cells lacking CxaR. Furthermore, in vivo protein-protein interaction assays demonstrated that CxaR directly interacts with both ClpXP and Sle1, whereas no direct interaction was detected between Sle1 and ClpX. In line with this, CxaR was found to co-localize with ClpX adjacent to the septum. Taken together, these findings reveal that CxaR is a new regulatory factor controlling staphylococcal cell splitting by acting as an adaptor protein for controlled ClpXP-mediated degradation of Sle1.

microbiology↗

Genome-wide analysis of fitness determinants of Staphylococcus aureus during growth in milk

Staphylococcus aureus is a major concern in the dairy industry due to its significance as a pathogen causing bovine mastitis as well as a source of food poisoning. The nutrient-rich milk environment supports bacterial growth, but the specific genetic determinants that facilitate S. aureus proliferation and persistence in milk are poorly understood. In this study, we conducted a genome-wide CRISPR interference sequencing (CRISPRi-seq) screen to identify fitness determinants essential for S. aureus growth and survival in milk. We identified 282 milk-essential genes, including those with key roles in DNA replication, protein synthesis, and metabolism. Comparative analysis with brain heart infusion (BHI) as growth medium, revealed 79 genes with differential fitness, highlighting specific adaptations required for growth in milk. Notably, we found that purine biosynthesis, folate cycle pathways, and metal acquisition were particularly important in this environment. Based on this, we further demonstrate that S. aureus is more sensitive to the folate inhibitors trimethoprim-sulfamethoxazole (TMP-SMX) in milk and identify several genes whose knockdown results in hypersensitivity to TMP-SMX in milk. Additionally, our analysis showed a relatively reduced importance of cell wall components, such as teichoic acids, for S. aureus fitness in milk, which is also reflected in reduced efficiency of antimicrobials targeting teichoic acids. Together, these findings provide new insights into the genetic basis of S. aureus fitness and antibiotic susceptibility in milk, offering directions for novel treatment strategies against bovine mastitis.

microbiology↗

Self-immunity towards a novel competence-induced streptococcal murein hydrolase is mediated by a Fem-transferase-like protein

Murein hydrolases (or peptidoglycan hydrolases) play diverse roles in bacteria, from controlled remodeling of the bacterial cell wall to lytic agents. In streptococci, a subset of these hydrolases is associated with competence-induced fratricide, a process where bacteria kill closely related cells to release DNA that can be taken up during natural transformation. Here, we characterize ScrM, a competence-induced murein hydrolase from Streptococcus dysgalactiae comprising a CHAP domain, an SH3b domain and an uncharacterized C-terminal domain (CCD). ScrM displayed lytic activity against pyogenic and salivarius group streptococci. Microscopy analysis of fluorescent fusions revealed that ScrM specifically localizes to the division zone of sensitive cells, with binding and localization mediated primarily by CCD. Upon competence induction, cells became immune to ScrM due to expression of ScrI, a Fem-transferase-like protein. We show by LC-MS/MS that ScrI incorporates Thr in place of Ala into the interpeptide bridges of peptidoglycan, which in turn prevents ScrM binding to the division zone, thereby protecting the cells from self-lysis during competence. ScrM and ScrI are conserved among pyogenic streptococcal pathogens and represent new players in the cell wall biogenesis of these bacteria that may form a platform for development of novel antimicrobial strategies.

microbiology↗

Genome-wide CRISPRi screens reveal the essentialome and determinants for susceptibility to dalbavancin in Staphylococcus aureus

Antibiotic resistance and tolerance remain a major problem for treatment of staphylococcal infections. Knowing genes that influence antibiotic susceptibility could open the door to novel antimicrobial strategies, including targets for new synergistic drug combinations. Here, we developed a genome-wide CRISPR interference library for Staphylococcus aureus, demonstrated its use by quantifying the essentialome in different strains through CRISPRi-seq, and used it to identify genes that modulate susceptibility to the lipoglycopeptide dalbavancin. By exposing the library to sublethal concentrations of dalbavancin using both CRISPRi-seq and direct selection methods, we found genes previously reported to be involved in antibiotic susceptibility, but also identified genes thus far unknown to affect antibiotic tolerance. Importantly, some of these genes could not have been detected by more conventional knock-out approaches because they are essential for growth, stressing the complementary value of CRISPRi-based methods. Notably, knockdown of a gene encoding the uncharacterized protein KapB specifically sensitizes the cells to dalbavancin, but not to other antibiotics of the same class, while knockdown of the Shikimate pathway surprisingly has the opposite effect. The results presented here demonstrate the potential of CRISPRi-seq screens to identify genes and pathways involved in antibiotic susceptibility and pave the way to explore alternative antimicrobial treatments through these insights.

microbiology↗