ArticleJournal of translational medicine2025
Tension-sensitive HOX gene expression in fibroblasts for differential scar formation.
Article in Journal of translational medicine, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Resveratrol Ameliorates Hypertrophic Scar Formation by Regulating ASIC3-Mediated Fibroblast-Macrophage Crosstalk: A Mechanistic Study.Phytotherapy research : PTR · 2026Article
- ZNF469 promotes extracellular matrix production in normal and keloid dermal fibroblasts.Molecular medicine reports · 2025Article
- Fine sutures combined with local flaps in the cosmetic repair of surgical defects of basal cell carcinoma of the head and face: a single-centre retrospective clinical study.European journal of medical research · 2025Article
- HOX and MEINOX in cellular plasticity, fibrosis, and cancer.World journal of stem cells · 2025Review
- Comprehensive analysis of keloid super-enhancer networks reveals FOXP1-mediated anti-senescence mechanisms in fibrosis.Cellular & molecular biology letters · 2025Article
- Investigating the Efficacy of Layered Moderate Tension Reduction Suturing in Facial Aesthetic Surgery.Cureus · 2025Article
- Biomechanical mechanism and clinical management progress of surgical wound tension.Frontiers in surgery · 2025Review
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Authors and funding
6 authors.
Funding
Abstract
backgroundScar formation is a common end-point of the wound healing process, but its mechanisms, particularly in relation to abnormal scars such as hypertrophic scars and keloids, remain not fully understood. This study unveils a novel mechanistic insight into scar formation by examining the differential expression of Homeobox (HOX) genes in response to mechanical forces in fibroblasts derived from normal skin, hypertrophic scars, and keloids.
methodsWe isolated fibroblasts from different scar types and conducted RNA sequencing (RNA-Seq) to identify differential gene expression patterns among the fibroblasts. Computational modeling provided insight into tension alterations following injury, and these findings were complemented by in vitro experiments where fibroblasts were subjected to exogenous tensile stress to investigate the link between mechanical tension and cellular behavior.
resultsOur study revealed differential HOX gene expression among fibroblasts derived from normal skin, hypertrophic scars, and keloids. Computational simulations predicted injury-induced tension reduction in the skin, and in vitro experiments revealed a negative correlation between tension and fibroblast proliferation. Importantly, we discovered that applying mechanical tension to fibroblasts can modulate HOX gene expression, suggesting a pivotal role of mechanical cues in scar formation and wound healing.
conclusionThis study proposes a model wherein successful wound healing and scar formation are critically dependent on maintaining tensional homeostasis in the skin, mediated by tension-sensitive HOX genes. Our findings highlight the potential of targeting mechanotransduction pathways and tension-sensitive HOX gene expression as therapeutic strategies for abnormal scar prevention and treatment, offering a new perspective on the complex process of scar formation.
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