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Paredes, L. C.

Publications and source records attributed to Paredes, L. C..

2 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↗

DRP1-mediated mitochondrial fission integrates growth hormone signaling with metabolic and stress adaptation in triple-negative breast cancer

Triple-negative breast cancer (TNBC) relies on metabolic plasticity to sustain growth under diverse microenvironmental conditions. Although growth hormone (GH) signaling has been linked to breast cancer progression, its mechanistic integration with mitochondrial dynamics and metabolic reprogramming remains unclear. Here, we show that GH promotes TNBC progression accompanied by DRP1-associated mitochondrial remodeling, as indicated by sensitivity to Mdivi-1. The MDA-MB-231 line enabled integrated assessment across 2D, 3D, hypoxia, and in vivo xenografts using consistent workflows and readouts. GH increased proliferation and mitochondrial mass without increasing OCR under protein normalization. Instead, GH selectively enhanced glycolytic flux and metabolic flexibility. Inhibition of DRP1 uncoupled GH-induced glycolysis from proliferation, demonstrating that mitochondrial fission is required to link metabolic reprogramming to cell-cycle progression. DRP1 inhibition with Mdivi-1 was associated with altered TP53 and HIF1A expression and extended GH activity to the regulation of a pro-inflammatory tumor microenvironment marked by cxcr4b, il8, and il12. Consistent with these findings, analysis of human TNBC transcriptomes revealed conserved enrichment of mitochondrial, metabolic, and inflammatory pathways. Together, these results support the GH-DRP1 axis as a candidate regulator of mitochondrial dynamics, metabolic plasticity, tumor progression and tumor microenvironment interactions in TNBC.

cancer biology↗