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Glickman, M. S.

Publications and source records attributed to Glickman, M. S..

2 recordsLinked to original sources

Division of Labor between SOS and PafBC in Mycobacterial DNA Repair and Mutagenesis

DNA repair systems allow microbes to survive in diverse environments that compromise chromosomal integrity. Pathogens such as M. tuberculosis must contend with the genotoxic host environment, which generates the mutations that underlie antibiotic resistance. Mycobacteria encode the widely distributed SOS pathway, governed by the LexA repressor, but also encode PafBC, a positive regulator of the transcriptional DNA damage response (DDR). Although the transcriptional outputs of these systems have been characterized, their full functional division of labor in survival and mutagenesis is unknown. Here we specifically ablate the PafBC or SOS pathways, alone and in combination, and test their relative contributions to repair. We find that SOS and PafBC have both distinct and overlapping roles that depend on the type of DNA damage. Most notably, we find that quinolone antibiotics and replication fork perturbation are inducers of the PafBC pathway, and that chromosomal mutagenesis is codependent on PafBC and SOS, through shared regulation of the DnaE2/ImuA/B mutasome. These studies define the complex transcriptional regulatory network of the DDR in mycobacteria and provide new insight into the regulatory mechanisms controlling the genesis of antibiotic resistance in M. tuberculosis.

microbiology

Efficient 5-OP-RU-induced enrichment of Mucosal-associated invariant T cells in the murine lung does not enhance control of aerosol Mycobacterium tuberculosis infection.

Mucosal-associated invariant T (MAIT) cells are an innate-like T cell subset in mammals that recognize microbial vitamin B metabolites presented by the evolutionarily conserved MHC I-related molecule MR1. Emerging data suggest that MAIT cells may be an attractive target for vaccine-induced protection against bacterial infections because of their rapid cytotoxic responses at mucosal services to a widely conserved bacterial ligand. In this study, we tested whether a MAIT cell priming strategy could protect against aerosol Mycobacterium tuberculosis (Mtb) infection in mice. Intranasal co-stimulation with the lipopeptide TLR 2/6 agonist, Pam2Cys (P2C), and the synthetic MR1 ligand, 5-OP-RU, resulted in robust expansion of MAIT cells in lung. Although MAIT cell priming significantly enhanced MAIT cell activation and expansion early after Mtb challenge, these MAIT cells did not restrict Mtb bacterial load. MAIT cells were depleted later in infection, with decreased detection of granzyme B+ and IFN{gamma}+ MAIT cells relative to uninfected P2C/5-OP-RU-treated mice. Decreasing the infectious inoculum, varying the time between priming and aerosol infection, and testing MAIT cell priming in NOS2 deficient mice all failed to reveal an effect of P2C/5-OP-RU induced MAIT cells on Mtb control. We conclude that intranasal MAIT cell priming in mice induces early MAIT cell activation and expansion after Mtb exposure, without attenuating M. tuberculosis growth, suggesting that Mtb evades MAIT cell-dependent immunity.

immunology