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June 2013 in “Biochimie” Myo-inositol supplements may improve insulin sensitivity and help with conditions like PCOS and gestational diabetes, but more research is needed.
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May 2002 in “The American journal of pathology” Cathepsin L is essential for normal hair growth and development.
108 citations
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July 2002 in “Molecular and cellular biology” Overexpressing Dsg3 in mice skin causes excessive cell growth and abnormal skin development.
105 citations
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May 2011 in “The journal of investigative dermatology/Journal of investigative dermatology” Activating TRPV3 stops human hair growth.
82 citations
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February 2017 in “Cold Spring Harbor Perspectives in Biology” The TGF-β family helps control how cells change and move, affecting skin, hair, and organ development.
65 citations
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September 2004 in “The American journal of pathology” Blocking BMP signaling causes hair loss and disrupts hair growth cycles.
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April 2009 in “British Journal of Dermatology” Epidermal stem cells could lead to new treatments for skin and hair disorders.
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May 2014 in “Expert Opinion on Therapeutic Targets” The document concludes that targeting 5α-reductase, the androgen receptor, and hair growth genes, along with using compounds with anti-androgenic properties, could lead to more effective hair loss treatments.
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February 2001 in “Current pharmaceutical design” Current and future treatments for alopecia areata focus on immunosuppression, immunomodulation, and protecting hair follicles.
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June 2019 in “Toxins” Bee venom might be a good alternative treatment for various skin conditions because it has many healing properties.
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January 2009 in “Sexual Development” Fadrozole and Finasteride change frog sex ratios and cause intersex animals with altered gene expressions.
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January 2021 in “Scientific Reports” Key genes and pathways, including Wnt, NF-Kappa, and JAK-STAT, are crucial for starting Pashmina fiber growth in goats.
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April 2021 in “International Journal of Molecular Sciences” Micro-current stimulation may promote hair growth more effectively than standard treatments.
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April 2026 in “Research Square” The study explores the antifibrotic potential of extracellular vesicles (EVs) from embryonic day 13 (E13) fetal mouse dermal fibroblasts. These EVs were effective in suppressing fibrotic activation in both E17 fascia fibroblasts and human keloid-derived fibroblasts, which are linked to scarring and fibrosis. In contrast, EVs from E17 and adult fibroblasts increased fibrotic responses. The findings suggest that E13 dermal fibroblasts have intrinsic antifibrotic properties transferable via EVs, offering potential therapeutic strategies for human scars and fibrotic skin diseases. The study also notes the importance of determining the optimal EV dosage, as higher doses may not achieve the desired antifibrotic effects. Despite challenges in large-scale collection and potential risks in human therapy, E13-derived EVs show promise for future antifibrotic treatments, emphasizing the need to identify specific antifibrotic factors within these EVs.