April 2014 in “The FASEB journal” The extract helps prevent hair loss and promotes hair growth in stressed mice.
11 citations
,
April 2022 in “Biophysical Journal” Disulfide bonds in keratin fibers break more easily under stress, especially when wet, affecting fiber strength.
6 citations
,
June 2016 in “Journal of receptor and signal transduction research” Minoxidil increases calcium levels and kills prostate cancer cells independently of calcium.
19 citations
,
April 2021 in “Journal of Cosmetic Dermatology” The treatment with silk proteins and linseed polysaccharides effectively protects and repairs chemically damaged hair.
November 2024 in “Advances in Pharmacology and Pharmacy” A reliable method was developed to measure Minoxidil and Tofacitinib in gel for hair loss treatment.
July 2024 in “Chemical Engineering Journal” A new microneedle system with minoxidil nanoparticles effectively promotes hair regrowth with fewer side effects.
7 citations
,
September 2021 in “Journal of Applied Polymer Science” Cuttlefish ink melanin protects hair from UV damage.
1 citations
,
June 2011 in “Journal of the Society of Cosmetic Scientists of Korea” The modified oriental prescriptions help hair growth and melanin production without irritating the skin.
January 2006 in “Analytical chemistry, an Indian journal” Two accurate methods were developed to measure finasteride in tablets.
A new method can quickly and accurately detect illegal chemicals in hair loss products.
January 2026 in “Biospecies” A 70% black ear mushroom extract hair tonic effectively stops M. furfur growth.
January 2026 in “International Journal of Cosmetic Science” Hair vibrancy involves how hair looks and feels, helping create better hair products.
January 2005 in “China Surfactant Detergent & Cosmetics” Black mud boosts collagen, enhances hair growth, and smoothness in mice.
1 citations
,
November 2023 in “Cosmetics” Surfactants damage hair, but sealing the cuticle can prevent this.
Three Indian medicinal plant compounds help hair growth.
12 citations
,
February 2022 in “Acta Biomaterialia” Minoxidil-loaded hyaluronic acid microneedles can effectively increase hair growth and could be a promising treatment for hair loss.
46 citations
,
June 1990 in “Archives of dermatology” Combining 5% minoxidil and 0.5% anthralin can help regrow hair in some severe alopecia areata patients.
Culturing hair follicles at the air-liquid interface with minoxidil significantly boosts hair growth and preserves the root sheath.
August 2021 in “Josai University Repository of Academia (Josai University)” The nanoparticles improved minoxidil's skin absorption, making them promising for skin treatments.
1 citations
,
September 2023 in “Pharmacology and Drug Toxicology” Minoxidil reduces oxidative stress and helps hair regrowth.
2 citations
,
January 2023 Nano-sized molybdenum may help treat hair loss and works well with minoxidil.
January 2023 in “Toxicological Research” 12 citations
,
November 2004 in “Photochemistry and Photobiology” Superoxide dismutase (SOD) can prevent hair graying in mice.
April 2024 in “JURNAL ILMU KEFARMASIAN INDONESIA” The mud mask with 22.5% kaolin and pomegranate peel extract worked best.
8 citations
,
September 2004 in “Contact dermatitis” Avoiding dyed wigs and clothing improved severe allergic reactions in a woman treated with diphencyprone.
21 citations
,
September 2001 in “Graefes Archive for Clinical and Experimental Ophthalmology” Minoxidil may help prevent capsular opacification after cataract surgery.
7 citations
,
October 1963 in “Textile Research Journal” Merino wool fibers change shape with moisture, while human hair shape stays the same.
10 citations
,
September 2020 in “Biopolymers” Hair's structure and properties change with pH; acidic pH maintains strength and less swelling, while alkaline pH increases water content and swelling.
January 2006 in “Journal of Society of Cosmetic Chemists of Japan” The new hybrid polymer improves dyed hair's color, feel, and manageability.
March 2026 in “Tissue Engineering and Regenerative Medicine” This review highlights the advancements in dopamine-modified tissue adhesives for underwater biomedical applications. It emphasizes the challenges of underwater adhesion due to interfacial water molecules and explores various strategies, particularly mussel-inspired catechol-based adhesives, which offer strong adhesion through multiple interactions. The review categorizes underwater adhesives, examines the properties and applications of dopamine-modified polymeric adhesives, and discusses stimuli-responsive adhesives. It also addresses the technical challenges and future directions for improving underwater adhesion technologies.