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Biology subjects

Espich, S.

Publications and source records attributed to Espich, S..

3 recordsLinked to original sources

MAIT cells induced by engineered Listeria exhibit antibacterial and antitumor activity

Mucosal-associated invariant T (MAIT) cells are among the most conserved and abundant innate-like T cells in humans that recognize microbial-derived riboflavin precursors and elicit potent antimicrobial responses. The foodborne pathogen Listeria monocytogenes is a broad host-range facultative intracellular pathogen that lacks the riboflavin biosynthetic pathway, leading us to hypothesize that this deficiency is pathoadaptive and allows the pathogen to evade MAIT cells. Here, we show that L. monocytogenes strains engineered to produce riboflavin (L. monocytogenes-ribDEAHT) are attenuated in wild-type mice but fully virulent in MAIT cell-deficient mice. Infection with L. monocytogenes-ribDEAHT prompted rapid and robust MAIT cell expansion in multiple tissues and required the cytolytic effector perforin to eliminate infected cells in vivo and in vitro. We also assessed the therapeutic potential of L. monocytogenes-ribDEAHT-stimulated MAIT cells in both infectious disease and cancer mouse models. Therapeutic administration of L. monocytogenes-ribDEAHT provided protection against Francisella tularensis in the lungs and inhibited tumor growth even in the absence of CD8+ T cells. These findings reveal the importance of MAIT cell evasion during L. monocytogenes infection and highlight the therapeutic potential of engineered L. monocytogenes to activate and harness MAIT cells for protection against infectious disease and cancer. Significance StatementListeria monocytogenes is a bacterial pathogen that grows freely in the environment but can become intracellular following ingestion of contaminated food. Although L. monocytogenes can synthesize most metabolites required for growth, it lacks the genes necessary to produce riboflavin (vitamin B2), an essential cofactor across all domains of life. We hypothesized that lacking riboflavin biosynthesis allows L. monocytogenes to evade mucosal-associated invariant T cells (MAIT cells), which generate potent antimicrobial responses against riboflavin-producing microbes. By engineering L. monocytogenes to produce riboflavin, we show that these strains robustly activate MAIT cells and are highly attenuated in wild-type mice, but not in MAIT cell-deficient mice. Furthermore, MAIT cells activated by engineered L. monocytogenes provided therapeutic protection against other riboflavin-producing bacteria and cancer.

microbiology↗

Methylglyoxal is an antibacterial effector produced by macrophages during infection

Infected macrophages transition into aerobic glycolysis, a metabolic program crucial for control of bacterial infection. However, antimicrobial mechanisms supported by aerobic glycolysis are unclear. Methylglyoxal is a highly toxic aldehyde that modifies proteins and DNA and is produced as a side-product of glycolysis. Here we show that despite the toxicity of this aldehyde, infected macrophages generate high levels of methylglyoxal during aerobic glycolysis while downregulating the detoxification system. We use targeted mutations in mice to modulate methylglyoxal generation and show that reducing methylglyoxal production by the host promotes survival of Listeria monocytogenes and Mycobacterium tuberculosis, whereas increasing methylglyoxal levels improves control of bacterial infection. Furthermore, we show that bacteria that are unable to detoxify methylglyoxal are avirulent and experience up to 1000-fold greater genomic mutation frequency during infection. Taken together, these results suggest that methylglyoxal is an antimicrobial innate immune effector that defends the host against bacterial pathogens.

microbiology↗

Disruption of Aldehyde Dehydrogenase 2 protects against 1 bacterial infection

The ALDH2*2 (rs671) variant present in >500 million individuals reduces ALDH2 function, impairing aldehyde detoxification. While aldehyde accumulation in these individuals is associated with numerous negative health consequences, a previous study showed a cohort of ALDH2*2 carriers are less likely to develop active pulmonary tuberculosis. Here, we present additional human data that support this finding and show ALDH2-deficiency in mice provides a fitness advantage during bacterial infections. We found aldehydes normally detoxified by ALDH2 killed the bacterial pathogens Mycobacterium tuberculosis and Francisella tularensis. Infected macrophages from Aldh2-/-mice had higher levels of formaldehyde and 4-hydroxynonenal, which enhanced their microbicidal capacity. Aldh2-/- mice were more resistant to infection with Mycobacterium tuberculosis and Francisella tularensis than parental mice and displayed elevated inflammatory cytokine and chemokine levels, accompanied by an increased accumulation of inflammatory monocytes and macrophages. These findings support a model in which host-derived aldehydes are robust innate immune effectors, limiting bacterial infection through both direct microbicidal activity and immune modulation. Collectively, this work may explain why the ALDH2*2 allele was selected for in humans.

microbiology↗