35 citations
,
March 2005 in “Journal of Investigative Dermatology” In this in vitro study, minoxidil, diazoxide, and the novel compound NNC 55-0118 increased hair follicle growth, supporting deer follicles as a viable bioassay for ATP-sensitive potassium channel modulators.
12 citations
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June 2019 in “The journal of pharmacology and experimental therapeutics/The Journal of pharmacology and experimental therapeutics” This study found that inhibiting the TRPV3 channel may significantly promote hair growth and suggests a potential therapeutic approach for hair loss and related skin diseases.
November 2010 in “Bradford Scholars (University of Bradford)” In this study, the authors reported that NNC55-9216, a selective SUR1 KATP channel opener, stimulated hair follicle growth in culture and enhanced the effects of minoxidil, suggesting a new potential treatment for hair loss.
In this study, deer hair follicles were shown to be an effective in vitro bioassay model, demonstrating that K(ATP) channel modulators directly influence hair follicle growth through specific channel types.
82 citations
,
March 1992 in “Journal of Investigative Dermatology” October 2025 in “Phytochemistry Letters” December 1991 in “Annals of the New York Academy of Sciences” March 2010 in “Hair transplant forum international” This piece discusses the complex biology of hair follicles and emphasizes the growing importance of related research, without providing new clinical findings.
397 citations
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February 2004 in “British Journal of Dermatology” This article reviews the mechanisms by which minoxidil stimulates hair growth and reports no new clinical findings.
102 citations
,
February 2008 in “The FASEB Journal” This study found that human hair follicles express ATP-sensitive potassium channels, suggesting that minoxidil acts on these channels and that drugs targeting them may treat hair disorders.
17 citations
,
August 2012 in “Archives of Pharmacal Research” Acankoreoside J from Acanthopanax koreanum may help promote hair growth.
2 citations
,
April 2022 in “Journal of Cosmetic Dermatology” This study found that de-saponinated Camellia seed cake extract promotes hair growth in vitro and in vivo by enhancing dermal papilla cell proliferation and modulating signaling pathways and growth factor expression.
1 citations
,
January 2009 in “Drug delivery system” This article provides a detailed review of minoxidil's pharmacological effects for treating androgenic alopecia but reports no new clinical results.
April 2024 in “Cellular signalling” This study on mice found that activating TRPML channels with MLSA1 promoted hair regeneration, accelerated hair cycle transition, and influenced human dermal papilla cells to secrete hair growth promoting factors while reducing hair growth inhibitors and oxidative damage.
3 citations
,
August 2025 in “Cell” Fibroblast bioelectric signaling can promote hair growth and may help treat hair loss.
This study suggests that Tenebrio molitor larvae extract may promote hair growth and prevent hair loss by enhancing cell proliferation and protecting against cytotoxicity in laboratory settings.
1 citations
,
January 1992 in “Juntendō Igaku/Juntendo igaku” This review discusses the hair growth mechanisms of minoxidil, suggesting both increased blood flow and a direct effect on hair follicles, but reports no new clinical results.
141 citations
,
June 2002 in “Philosophical Transactions of the Royal Society B Biological Sciences” This review discusses recent physiological and genetic advances in understanding tip growth in Arabidopsis thaliana root hairs and reports no new experimental results.
200 citations
,
November 1997 in “Planta” This study found that while a tip-focused calcium gradient influences localized growth in root hairs and pollen tubes, it is not the primary determinant of growth direction in root hairs of Arabidopsis thaliana.
46 citations
,
November 2019 in “Journal of Integrative Plant Biology” This study found that calmodulin 7 (CaM7) inhibits the calcium channel CNGC14 in root hairs, affecting their polar growth by controlling calcium signaling.
34 citations
,
October 1998 in “PubMed” This article reviews the role of stem cells and cytokines in hair growth and discusses existing and potential treatments, but it presents no new clinical data.
8 citations
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July 2022 in “Frontiers in plant science” This review outlines the current understanding of how pH contributes to root hair development and reports no new experimental findings.
January 2025 in “Nature Communications” This study discovered that calcium dependent protein kinase 1 (CPK1) directly activates cyclic nucleotide-gated channels 5, 6, and 9, promoting root hair growth in Arabidopsis by regulating Ca²⁺ signaling.
18 citations
,
November 2017 in “JoLS Journal of Life Sciences” This study investigates the effects of Tenebrio molitor as a novel biomaterial for preventing alopecia and promoting hair growth, but reports no conclusive results.
56 citations
,
April 2019 in “The Plant Journal” This study found that CNGC 6, CNGC 9, and CNGC 14 are crucial for maintaining calcium oscillations necessary for normal root hair growth in plants, with mutations leading to defects like swelling and bursting.
5 citations
,
September 2015 in “Medical hypotheses” This article suggests that a topical sulfonylurea drug may inhibit excessive hair growth caused by diazoxide without affecting its beneficial effects on beta cells, potentially offering a treatment for various forms of hypertrichosis and hirsutism.
July 2026 in “Bioactive Materials” This study demonstrated that degradable core-shell cryomicroneedles loaded with hair follicle organoids supported natural-like hair regeneration in mice, offering a promising approach for controllable follicular unit regeneration in baldness.
27 citations
,
June 2013 in “Genes & development” This study found that L-type channel blockers can induce hair growth in Timothy syndrome by overcoming delays in anagen phase, suggesting a potential therapeutic role for tissue regeneration.
3 citations
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November 2022 in “Frontiers in molecular biosciences” This study suggests that in mice, plasmalogens may enhance hair growth by activating TRPC4 channels, which increases calcium influx and subsequently stimulates AMPK in hair follicles.
2 citations
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May 2023 in “International Journal of Molecular Sciences” This review discusses current knowledge about the TRPV3 ion channel's role in skin functions and diseases, highlighting its potential as a therapeutic target for pain and itch, though suitable ligands are limited.