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Vinolo, M. A. R.

Publications and source records attributed to Vinolo, M. A. R..

3 recordsLinked to original sources

HIF-1α integrates metabolic and immunoregulatory programs in RORγt⁺ regulatory T cells during intestinal inflammation

Regulatory T (Treg) cells expressing ROR{gamma}t accumulate in the intestinal mucosa, yet the signals that determine whether they remain suppressive or acquire inflammatory features are incompletely defined. We first reanalyzed human ileal single-cell data and identified Crohns disease-enriched FOXP3 states in which RORC, HIF1A, hypoxia-responsive, inflammatory, and metabolic programs converged. We then deleted Hif1a in ROR{gamma}t-expressing cells and tested acute DSS colitis, T cell transfer colitis, and azoxymethane/DSS-induced colitis-associated colorectal cancer (CAC). {Delta}Hif1a mice were protected in all three settings. In lymphopenic recipients given the same pathogenic naive T cells, changing only the genotype of the cotransferred Treg population enhanced protection, linking the phenotype to regulatory-cell function in vivo. Reanalysis of mouse colonic Treg single-cell ATAC-seq nominated suppressive and mitochondrial programs for cell-intrinsic testing during low HIF1- expression. {Delta}Hif1a ROR{gamma}t Treg produced more IL-10 and less IL-17A and IFN-{gamma}, limited responder-cell proliferation, contained fewer dysfunctional and mitochondrial-reactive-oxygen-species-high mitochondria, favored fusion-associated transcription, and displayed greater basal and maximal oxygen consumption and reserve capacity. During CAC, HIF-1 loss blunted inflammatory ROR{gamma}t Treg accumulation and reduced tumor burden. Human trajectory and gene-regulatory-network analyses further predicted that HIF1A perturbation would oppose selected disease-associated branches. Together, these findings identify HIF-1 as a context-dependent checkpoint that connects hypoxia-responsive transcription to mitochondrial fitness and inflammatory plasticity in intestinal ROR{gamma}t Treg.

immunology↗

Small intestine microbiota development prevents early-life adiposity via IL-22-mediated intestinal PPARα suppression

Perturbation to the early-life microbiota has long-term detrimental effects on health and development, leading to increased risk for metabolic dysfunction and childhood obesity. Despite the central role of the small intestine (SI) in energy balance, the impact of SI microbiota establishment on the regulation of host metabolism and early-life adiposity remains unclear. Here, we report that disruption of a critical SI microbiota-intestinal epithelial cell circuit, specifically during a critical early-life period, drives long-lasting obesity. We demonstrate that the SI microbiota expands in abundance and diversity significantly between 2 and 3 weeks of life, and that segmented filamentous bacteria (SFB) and Lactobacillus intestinalis establish residence. Disruption of the early-life SI microbiota with antibiotics leads to enhanced lipid uptake and adiposity, driven by increased peroxisome proliferator-activated receptor alpha (PPAR) expression and activity in SI epithelial cells (IECs). We demonstrate that SFB and L. intestinalis are key regulators of PPAR in SI IECs by increasing intestinal IL-22 levels specifically during weaning, which is necessary for inhibition of antibiotic-induced adiposity in a PPAR-dependent manner. Together, this work provides mechanistic insights into beneficial microbiota-induced epithelial-immune crosstalk in the SI that is specific to early life, a critical protective mechanism against excessive adiposity in infancy, and offers insight into how antibiotics during infancy may increase the risk of childhood obesity. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=123 SRC="FIGDIR/small/731695v1_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@1b32f07org.highwire.dtl.DTLVardef@d4a5a6org.highwire.dtl.DTLVardef@c76d1borg.highwire.dtl.DTLVardef@cc479d_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗

Metaproteomics reveals age-specific alterations of gut microbiome in hamsters with SARS-CoV-2 infection

The gut microbiomes pivotal role in health and disease is well-established. SARS-CoV-2 infection often causes gastrointestinal symptoms and is associated with changes of the microbiome in both human and animal studies. While hamsters serve as important animal models for coronavirus research, there exists a notable void in the functional characterization of their microbiomes with metaproteomics. In this study, we present a workflow for analyzing the hamster gut microbiome, including a metagenomics-derived hamster gut microbial protein database and a data-independent acquisition metaproteomics method. Using this workflow, we identified 32419 protein groups from the fecal microbiomes of young and old hamsters infected with SARS-CoV-2. We showed age-specific changes in the expressions of microbiome functions and host proteins associated with microbiomes, providing further functional insight into the dysbiosis and aberrant cross-talks between the microbiome and host in SARS-CoV-2 infection. Altogether this study established and demonstrated the capability of metaproteomics for the study of hamster microbiomes.

microbiology↗