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Multi-omic analysis reveals retinoic acid molecular drivers for fibrosis and regenerative repair in skin fibrosis [Spatial transcriptomics]

GSE278169 Mus musculus Other 7 samples Submitted 2025/08/13 Platform GPL19057
Summary
In the skin, tissue injury results in fibrosis in the form of scars composed of dense extracellular matrix deposited by fibroblasts. The therapeutic goal of regenerative wound healing has remained elusive, in part because principles of fibroblast programming and adaptive response to injury remain incompletely understood. Here, we present a multimodal -omics platform for the comprehensive study of cell populations in complex tissue, which has allowed us to characterize the cells involved in wound healing using a bleomycin induced ifibrosis model. We employ a bleomycin skin models that recapitulates human tissue repair kinetics. Through integrated analysis of single cell chromatin landscapes and gene expression states, coupled with spatial transcriptomic profiling, we are able to impute fibroblast epigenomes with temporospatial resolution. This has allowed us to reveal potential mechanisms controlling fibroblast fate during migration, proliferation, and differentiation following skin injury, and thereby reexamine the canonical phases of wound healing. These findings have broad implications for the study of tissue repair in complex organ systems.
Published in
Multi-omic analysis reveals retinoic acid molecular drivers for dermal fibrosis and regenerative repair in the skin
Griffin M, Guo JL, Parker JBL et al. · Cell stem cell 2025 · PMID 40816279 · doi:10.1016/j.stem.2025.07.010
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Also filed as BioProject PRJNA1165793. Searching any of these in the dataset finder brings you back here.

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