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Bonaiti, E.

Publications and source records attributed to Bonaiti, E..

2 recordsLinked to original sources

MAIT cell responses to S. aureus and sensitivity to HlgAB are modulated by activation and tissue-dependent virulence effects

Mucosa-associated invariant T (MAIT) cells are unconventional T cells with innate-like rapid antimicrobial effector functions and serve as resident sentinels at mucosal and non-mucosal barriers. However, their role in immune defense against Staphylococcus aureus and the impact of bacterial immune evasion mechanisms are incompletely understood. Here, we have investigated MAIT cell responses to S. aureus and the impact of its broadly expressed leukocidin toxin HlgAB on MAIT cell responses in different human tissue sites. MAIT cells respond to S. aureus with a complex polyfunctional profile spanning pro-inflammatory IL-17, TNF, and IFN{gamma}, anti-inflammatory IL-10, plus granzymes A, B, and K, perforin, and granulysin. The quality of responses was influenced by microbial dose and time of exposure and was dependent on both MR1-presented antigen and cytokine co-activation. CD56 MAIT cells displayed stronger effector responses and higher HlgAB sensitivity compared to CD56- cells. MAIT cells were partially resistant to HlgAB-toxicity compared to monocytes; blood-derived MAIT cells remained susceptible, whereas tonsillar MAIT cells showed minimal sensitivity. Notably, activation reduced the MAIT cell susceptibility to HlgAB, and such activation also afforded indirect protection to monocytes in co-cultures. The reduced susceptibility of tonsillar MAIT cells correlated with lower CCR2 and CXCR1 expression, a pattern shared with barrier tissues such as the lung and intestines. In conclusion, these findings indicate that MAIT cells exhibit tissue- and context-dependent responses to S. aureus and sensitivity to HlgAB-mediated immune evasion. ImportanceMAIT cells are an evolutionarily conserved unconventional T cell subset that responds to riboflavin pathway-derived antigens from a range of microbes. Here, we found that the human MAIT cell response to the pathogen S. aureus is robust with a polyfunctional complexity influenced by bacterial concentration and response kinetics. The ubiquitously expressed S. aureus immune-evasive toxin HlgAB attacks MAIT cells via CCR2. However, the sensitivity of MAIT cells to HlgAB varies depending on tissue localization, where in particular tissue-resident MAIT cells in tonsils are resistant. Antigen-specific activation of MAIT cells reduces HlgAB sensitivity, with protection also afforded to monocytes in the vicinity. These findings uncover the complex and dynamic interaction between an evolutionarily conserved arm of immunity, and immune evasion mechanisms of the important pathogen S. aureus.

immunology↗

Tunable DNMT1 degradation reveals cooperation of DNMT1 and DNMT3B in regulating DNA methylation dynamics and genome organization

DNA methylation (DNAme) is a key epigenetic mark that regulates critical biological processes maintaining overall genome stability. Given its pleiotropic function, studies of DNAme dynamics are crucial, but currently available tools to interfere with DNAme have limitations and major cytotoxic side effects. Here, we present untransformed and cancer cell models that allow inducible and reversible global modulation of DNAme through DNMT1 depletion. By dynamically assessing the effects of induced passive demethylation through cell divisions at both the whole genome and locus-specific level, we reveal a cooperative activity between DNMT1 and DNMT3B to maintain and control DNAme. Moreover, we show that gradual loss of DNAme is accompanied by progressive and reversible changes in heterochromatin abundance, compartmentalization, and peripheral localization. DNA methylation loss coincided with a gradual reduction of cell fitness due to G1 arrest, but with minor level of mitotic failure. Altogether, this powerful system allows DNMT and DNA methylation studies with fine temporal resolution, which may help to reveal the etiologic link between DNA methylation dysfunction and human disease.

molecular biology↗