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Vazquez-Torres, A.

Publications and source records attributed to Vazquez-Torres, A..

2 recordsLinked to original sources

Epithelial-intrinsic nitric oxide synthase 2 sustains host-microbiota dynamics that promote colitis

The microbiota influence disease pathogenesis and treatment, however we have limited ability to assess patient status in relation to the microbiota. Here we find that the nitric oxide generating enzyme, nitric oxide synthase 2 (Nos2), is transcriptionally primed in intestinal epithelial cells (IECs), as opposed to immune cells, in inflammatory bowel disease (IBD) patients. Generation of IEC-specific Nos2 knockout mice revealed that epithelial Nos2 activity promoted susceptibility to intestinal disease and sustained a colitogenic microbiota. Epithelial Nos2 increased levels of nitric oxide-derived nitrates and nitrate-metabolizing bacteria in the intestine. Unexpectedly, extra-intestinal nitrates also reflected IEC-intrinsic Nos2 expression, and systemic nitrate concentrations in patients paralleled intestinal Nos2 activation. In fact, temporally inhibiting epithelial Nos2 was sufficient to alter intestinal nitrate homeostasis and inflammation in mice, as well as restrict nitrate production by human intestinal organoids. These data reveal that epithelial nitric oxide metabolism directs host-microbiota dynamics that can alter disease and that monitoring and targeting this axis may benefit patients with IBD.

immunology↗

Rescue of transcriptional pausing in metabolic genes jumpstarts Salmonella antioxidant defenses

Detoxification, scavenging and repair systems embody the archetypical antioxidant defenses of prokaryotic and eukaryotic cells1-3. Metabolic rewiring is an emergent aspect in the adaptation of bacteria to oxidative stress4, 5. Evolutionarily diverse bacteria combat the toxicity of reactive oxygen species by actively engaging the stringent response6-8, a metabolic program activated at the level of transcription initiation via guanosine tetraphosphate and the -helical DksA protein9. Studies herein with Salmonella demonstrate that the interactions of structurally related, but functionally unique, -helical Gre factors with the secondary channel of RNA polymerase elicit the expression of metabolic signatures that are associated with resistance to oxidative killing. Gre proteins resolve pauses in ternary elongation complexes of Embden-Meyerhof-Parnas (EMP) glycolysis and aerobic respiration genes. The Gre-directed utilization of glucose in overflow and aerobic metabolism satisfies the energetic and redox demands of Salmonella, while preventing the occurrence of amino acid bradytrophies. Moreover, the simultaneous utilization of lower glycolysis, the methylglyoxal pathway and the electron transport chain curtails the noxious coexistence of reductive and electrophilic stress. The resolution of transcriptional pauses in EMP glycolysis and aerobic respiration genes by Gre factors safeguards Salmonella from the cytotoxicity of phagocyte NADPH oxidase in the innate host response. Control of transcriptional elongation represents a pivotal breakpoint in the regulation of metabolic programs underlying bacterial pathogenesis.

microbiology↗