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June 2013 in “Journal of structural biology” High glycine–tyrosine keratin-associated proteins help make hair strong and maintain its shape.
High CCL11 levels may indicate poor response to baricitinib in severe alopecia areata.
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March 2019 in “Archives animal breeding/Archiv für Tierzucht” The KRTAP15-1 gene affects cashmere fiber thickness in goats.
April 2024 in “bioRxiv (Cold Spring Harbor Laboratory)” A gene network led by RSL4 is crucial for early root hair growth in response to cold in Arabidopsis thaliana.
August 2025 in “International Journal of Molecular Sciences” AVT is highly conserved and may have antimicrobial properties.
January 2021 in “대한피부과학회지” The solution increased hair density safely and effectively for hair loss.
July 2024 in “Frontiers in Pharmacology” Pilose antler extracts help hair growth by activating hair follicle stem cells.
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September 1998 in “PubMed” Gorillas in Gabon improved after protein supplements were added to their diet.
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May 1981 in “Australian Journal of Biological Sciences” Rat hair follicle cells can produce and release various glycosaminoglycans over time.
October 2023 in “Cell & bioscience” A special gene region controls the re-emergence of a primitive wool type in Merino sheep, improving their wool yield and adaptability.
January 2024 in “The Egyptian Journal of Hospital Medicine” Men with male pattern baldness have higher levels of A-FABP, which might help in early detection.
IP-PA1 helps grow hair in mice and affects human cell growth-related genes differently than traditional hair growth treatments.
July 2024 in “Experimental Dermatology” AP collagen peptides help hair grow and improve hair health.
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October 2024 in “Medicina” CLEC4D gene variants may increase the risk of alopecia areata in Jordanians.
November 2025 in “Journal of Investigative Dermatology” TEDAR is crucial for skin cell differentiation and barrier formation.
July 2023 in “bioRxiv (Cold Spring Harbor Laboratory)” Chitosan slows root hair growth and causes a buildup of callose at low concentrations, but at high concentrations, it only inhibits growth without callose buildup.
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February 2014 in “Animal Biotechnology” The PTGER2 gene is highly active in Cashmere goat skin and its activity changes with the hair growth cycle.
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July 2015 in “Journal of Cosmetic Dermatology” No clear link between specific gene and hair loss in Mexican brothers.
March 2017 in “European Urology Supplements” Gene differences affect finasteride side effects in men with hair loss.
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March 2001 in “Journal of Investigative Dermatology” Male pattern baldness is linked to specific genetic variations in the androgen receptor gene.
Four genes are linked to alopecia areata, with two increasing risk and two offering protection.
March 2026 in “Journal of Enzyme Inhibition and Medicinal Chemistry” PROTACs show promise in cancer treatment by effectively degrading specific harmful proteins.
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June 2018 in “Plant & cell physiology/Plant and cell physiology” Changing the amount of PLC5 in Arabidopsis affects root growth and drought resistance, with less PLC5 slowing root growth and more PLC5 improving drought tolerance but hindering root hair growth.
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December 1992 in “Journal of Cutaneous Pathology” Skin tumors and normal skin structures have different lectin-binding patterns.
February 2023 in “Materials today bio” The treatment effectively promotes hair regrowth in androgenetic alopecia without causing skin irritation.
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October 2003 in “Biology of the Cell” Galectin-1 helps in RNA processing in cell nuclei.
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June 2010 in “Electrophoresis” New techniques helped identify rare wool proteins by reducing dominant ones.
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August 2019 in “General and Comparative Endocrinology” Male yak hair growth is influenced by DHT synthesis, which is promoted by 5α-red1 and AR during growth phases, while E2 may inhibit growth through ERα.
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August 2023 in “BMC genomics” The study found that genetic differences related to hair growth and other traits help cashmere goats adapt to high-altitude environments.
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December 2019 in “The Plant Journal” Nitrate helps plants manage phosphate uptake and starvation responses through NIGT1 proteins.