13 citations
,
January 2022 in “Stem cell reviews and reports” This study found that using cultured mesenchymal stem cells from mouse whisker hair follicle outer root sheath in wound healing reduced inflammation, accelerated closure, and resulted in less hypertrophic scarring in mice.
27 citations
,
October 2020 in “Biomedicine & Pharmacotherapy” This study found that transplanting hair follicle bulge-derived stem cells in rats enhanced skin regeneration during expansion by differentiating into several skin-related cells and increasing the expression of growth factors.
38 citations
,
July 2020 in “EMBO journal” In this study, researchers found that SIRT7 activates quiescent hair follicle stem cells to promote hair growth in mice by triggering the telogen-to-anagen cycle transition, with potential implications for age-related hair loss.
51 citations
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April 2020 in “Cells” This study found that macrophage extracellular vesicles enriched with Wnt proteins significantly promoted hair follicle growth in mice and increased hair shaft size in human hair follicles, suggesting potential clinical use for treating hair loss.
58 citations
,
March 2019 in “Experimental Dermatology” This study suggests that exosomes derived from dermal papilla cells, especially those cultured in three dimensions, promote hair growth and regeneration by enhancing follicular cell activity.
18 citations
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December 2018 in “Expert Opinion on Biological Therapy” This review discusses hair follicle stem cells for wound healing and reports no new clinical results, noting their potential but emphasizing the need for further understanding and safety in clinical applications.
113 citations
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November 2017 in “Scientific Reports” This study found that treatment with mesenchymal stem cell extracellular vesicles enhanced hair growth in mice and stimulated dermal papilla cell activity and growth factor production in vitro.
36 citations
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February 2017 in “Journal of Cellular and Molecular Medicine” In this study, VEGF165 induced hair follicle stem cells to differentiate into vascular endothelial cells, potentially supporting angiogenesis and neovascularization, with the Notch signaling pathway affecting differentiation efficiency.
1279 citations
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November 2005 in “Nature Medicine”