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Pes, J.

Publications and source records attributed to Pes, J..

2 recordsLinked to original sources

Swimming motility in the gut microbiota is diverse and increased in inflammation.

Swimming motility has long been studied as a virulence mechanism of enteric pathogens, while the resident microbiota's motility has only been inferred from proxies or explored through a few model species. This study presents a direct, functional analysis of gut bacterial motility in health and inflammation. Using phase-contrast microscopy and high-throughput 3D tracking, we quantified motile bacteria and characterized their swimming behaviours directly in diluted fresh gut content. In healthy mice, fewer than 3% of bacteria were motile along the digestive tract, and their swimming patterns were dominated not by the run-tumble behavior of model gut species but by diverse behaviours rich in reverses. In five mouse models with intestinal inflammation (spanning chemical, genetic, dietary and infectious etiologies) the motile fraction rose by at least 4-fold, correlating with elevated Lipocalin-2 where measured. Reverse-rich patterns remained prevalent in these inflamed conditions, with the notable exception of Salmonella infection. Paired metagenomics and metatranscriptomics showed enrichment of flagellar genes, while communities transferred into cecal water from inflamed mice raised their motile fraction within an hour, indicating that the rise reflects both enrichment of motile taxa and rapid modulation within existing populations. In vitro assays with human-derived isolates confirmed motility across several phyla, with variability down to strain level, and identified oxygen and viscosity as key modulators. These findings support increased motility as a hallmark of the inflamed gut and challenge established assumptions about gut bacterial motility.

microbiology↗

Neonatal liver niches program T cell tolerance

After birth, the immune system must learn to tolerate a rapidly changing milieu of commensals and self while remaining ready for pathogens. Here we characterize the neonatal liver as a central hub in this process: In postnatal week 1-2, the liver hosts a developmentally encoded, microbiota-independent expansion of regulatory T cells (Tregs) that coexists with microbiota-tuned conventional wave of activated CD4 T cells (Tconvs). Mechanistically, the Treg expansion is governed by MHCII-mediated antigen presentation by CCR7+ cDC1s, which establish tolerogenic DC:T cell clusters in the liver parenchyma, allowing for local expansion and control via PD-L1 checkpoints that selectively increase Tregs without unleashing Tconvs. Importantly, this transient, neonatal program predisposes hepatotropic viral infections to progress toward chronic disease but also protects the adult liver from steatotic disease. These data position the neonatal liver as a unique site of early life T-cell education with timing-sensitive implications for early-life interventions.

immunology↗