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Mukkayyan, N.

Publications and source records attributed to Mukkayyan, N..

4 recordsLinked to original sources

A non-classical mechanism of β-lactam resistance in Methicillin-Resistant Staphylococcus aureus (MRSA) and its effect on virulence

Methicillin-Resistant Staphylococcus aureus (MRSA) are pathogenic bacteria that are infamously resistant to {beta}-lactam antibiotics, a property attributed to the mecA gene. Recent studies have reported that mutations associated with the promoter region of pbp4 demonstrated high levels of {beta}-lactam resistance, suggesting the role of PBP4 as an important non-mecA mediator of {beta}-lactam resistance. The pbp4 promoter-associated mutations have been detected in strains with or without mecA. Our previous studies that were carried out in strains devoid of mecA described that pbp4 promoter-associated mutations lead to PBP4 overexpression and {beta}-lactam resistance. In this study, by introducing various pbp4 promoter-associated mutations in the genome of an MRSA strain, we demonstrate that PBP4 overexpression can supplement mecA-associated resistance in S. aureus and can lead to increased {beta}-lactam resistance. The promoter and regulatory region of pbp4 is shared with a divergently transcribed gene, abcA, which encodes for a multidrug exporter. We demonstrate that the promoter mutations caused an upregulation of pbp4 and downregulation of abcA, confirming that the resistant phenotype is associated with PBP4 overexpression only. PBP4 has also been associated with staphylococcal pathogenesis, however, its exact role remains unclear. Using a C. elegans model, we demonstrate that strains having increased PBP4 expression are less virulent compared to wild-type strains, suggesting that {beta}-lactam resistance mediated via PBP4 likely comes at the cost of virulence. ImportanceOur study demonstrates the ability of PBP4 to be an important mediator of {beta}-lactam resistance in not only Methicillin-susceptible Staphylococcus aureus (MSSA) background strains as previously demonstrated, but also in MRSA strains. When present together, PBP2a and PBP4 overexpression can produce increased levels of {beta}-lactam resistance, causing complications in treatment. Thus, this study suggests the importance of monitoring PBP4-associated resistance in clinical settings, as well as understanding the mechanistic basis of associated resistance, so that treatments targeting PBP4 may be developed. This study also demonstrates that S. aureus strains with increased PBP4 expression are less pathogenic, providing important hints about the role of PBP4 in S. aureus resistance and pathogenesis.

microbiology↗

In-vivo detection of cyclic-di-AMP in Staphylococcus aureus

Cyclic-di-AMP (CDA) is a signaling molecule that controls various cellular functions including antibiotic tolerance and osmoregulation in Staphylococcus aureus. In this study, we developed a novel biosensor (bsuO P6-4) for in-vivo detection of CDA in S. aureus. Our study showed that bsuO P6-4 could detect a wide concentration range of CDA in both laboratory and clinical strains making it suitable for use in both basic and clinical research applications.

microbiology↗

Complete identity of the cis-asRNA StfZ and its influence on FtsZ protein level and cell division in Escherichia coli

Bacteria regulate FtsZ protein levels through transcriptional and translational mechanisms for proper cell division. A cis-antisense RNA, StfZ, produced from the ftsA-ftsZ intergenic region was proposed to regulate the FtsZ level in Escherichia coli. However, its structural identity remained unknown. In the present study, we determined the complete sequence, identified the promoters, and effects of StfZ on the FtsZ level. We show that StfZ is expressed at 1:6 ratio of StfZ:ftsZ mRNA at all growth phases from three promoters as three isoforms of 366 nt, 474 nt, and 552 nt. Overexpression of StfZ reduces FtsZ level, increases cell size, and blocks cell division. Thus, the cis-encoded StfZ emerges as a novel factor for maintaining the FtsZ level at different growth phases in E. coli.

microbiology↗

Loss of GdpP function in Staphylococcus aureus leads to β-lactam tolerance and enhanced evolution of β-lactam resistance

SynopsisO_ST_ABSBackgroundC_ST_ABSWe previously reported the presence of mutations in gdpP among Staphylococcus aureus strains that were obtained by serial passaging in {beta}-lactam drugs. gdpP codes for a phosphodiesterase that cleaves cyclic-di-AMP (CDA), a newly discovered second messenger. ObjectivesWe sought to identify the role of gdpP in {beta}-lactam resistance of S. aureus. MethodsCDA concentrations in bacterial cytosol were measured through mass-spectrometric analysis. gdpP deletion mutagenesis and their complemented strains were created in clinically relevant S. aureus strains to characterize its function. ResultsgdpP associated mutations among passaged strains were identified to cause loss of phosphodiesterase function, leading to increased CDA accumulation in the bacterial cytosol. Deletion of gdpP led to an enhanced ability of the bacteria to withstand a {beta}-lactam challenge (two to three log increase in bacterial colony forming units) by promoting tolerance without enhancing MICs of {beta}-lactam antibiotics. Our results demonstrate that increased drug tolerance due to loss of GdpP function can provide a selective advantage in acquisition of high-level {beta}-lactam resistance and could lead to {beta}-lactam treatment failure of S. aureus infections. ConclusionsLoss of GdpP function increases tolerance to {beta}-lactams that can lead to its therapy failure and can permit {beta}-lactam resistance to occur more readily.

microbiology↗