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Manias, D.

Publications and source records attributed to Manias, D..

2 recordsLinked to original sources

A light-induced microprotein triggers regulated intramembrane proteolysis to promote photo sensing in a pathogenic bacterium.

Light, a ubiquitous environmental stimulus, shapes behavior and physiology across all domains of life. While photoreceptors are widespread in bacterial genomes, their functional roles and signal transduction mechanisms in non-photosynthetic bacteria remain understudied. Light represses biofilms and virulence factors through a bacteriophytochrome photoreceptor BphP and response regulator AlgB in the human pathogen Pseudomonas aeruginosa. Here, we used transposon mutagenesis screening to identify a conserved hypothetical microprotein, DimA, as the master activator of the photo-sensing cascade. Transcriptomics, luciferase reporter assays and physiological assays revealed that deletion of dimA abolishes light-dependent suppression of virulence factors and biofilms. Mechanistically, we demonstrated that DimA activates the site-I protease AlgW, triggering regulated intramembrane proteolysis of the anti-sigma factor MucA, liberating sigma factor AlgU ({sigma}22), which promotes algB expression. We discovered a positive feedback loop where light-activated AlgB upregulates dimA expression, thereby amplifying the photosensory response. This work establishes DimA as a crucial activator of photo sensing and expands our understanding of bacterial adaptation to changing light environments.

microbiology↗

Arginine impacts aggregation, biofilm formation, and antibiotic susceptibility in Enterococcus faecalis

Enterococcus faecalis is a commensal bacterium in the gastrointestinal tract (GIT) of humans and other organisms. E. faecalis also causes infections in root canals, wounds, the urinary tract, and on heart valves. E. faecalis metabolizes arginine through the arginine deiminase (ADI) pathway, which converts arginine to ornithine and releases ATP, ammonia, and CO2. E. faecalis arginine metabolism also affects virulence of other pathogens during co-culture. E. faecalis may encounter elevated levels of arginine in the GIT or the oral cavity, where arginine is used as a dental therapeutic. Little is known about how E. faecalis responds to growth in arginine in the absence of other bacteria. To address this, we used RNAseq and additional assays to measure growth, gene expression, and biofilm formation in E. faecalis OG1RF grown in arginine. We demonstrate that arginine decreases E. faecalis biofilm production and causes widespread differential expression of genes related to metabolism, quorum sensing, and polysaccharide synthesis. Growth in arginine also increases aggregation of E. faecalis and promotes decreased susceptibility to the antibiotics ampicillin and ceftriaxone. This work provides a platform for understanding of how the presence of arginine in biological niches affects E. faecalis physiology and virulence of surrounding microbes.

microbiology↗