December 2025 in “Cosmetics” The bio-based complex effectively repairs and protects chemically damaged hair.
August 2025 in “BMC Genomics” Certain genes contribute to stronger hooves in barefoot racing horses.
April 2025 in “Materials Today Bio” A new treatment using gold nanoclusters can safely reduce unwanted hair growth.
February 2025 in “Animals” Understanding proteins in skin structures like claws and hair is crucial for future research.
September 2024 in “Heliyon” Repeated hair dyeing significantly damages hair.
June 2024 in “International Journal of Nanomedicine” CRISPR/Cas9 has improved precision and control but still faces clinical challenges.
48 citations
,
January 2024 in “Frontiers in Pharmacology” Improving topical drug delivery involves overcoming skin barriers and using personalized dosing to enhance effectiveness.
3 citations
,
July 2025 in “Gels” Engineered protein hydrogels improve medical treatments by mimicking natural body structures.
14 citations
,
November 2012 in “SLAS discovery” Some herbal extracts can promote hair growth and prevent hair loss.
10 citations
,
July 2022 in “Journal of Medicinal Chemistry” Adding a second method to PROTACs could improve cancer treatment.
6 citations
,
January 2013 in “Journal of Ayurveda and integrative medicine” The detoxification process made Abrus precatorius seeds safe and effective for use.
May 2024 in “BMC veterinary research” Metabolites and diet affect hair growth cycles in cashmere goats.
December 2023 in “The journal of physical chemistry. B (1997 : Online)” Human hair keratin might be good for filtering out harmful substances from water.
April 2023 in “Advanced functional materials” The study created a tool that mimics natural cell signals, which increased cell growth and could help with hair regeneration research.
22 citations
,
June 2021 in “Plants” Sterculia foetida seed extract shows promise for therapeutic use due to its anti-inflammatory and pain-relief properties.
3 citations
,
November 2025 in “Biomimetics” Hydrogels show promise in preventing and treating skin damage from radiation therapy.
1 citations
,
January 2025 in “Proceedings of the National Academy of Sciences” LPAR6 has a unique way of binding and activating, which helps in designing treatments for hair loss and cancer.
1 citations
,
August 2023 in “Military Medical Research” Smart hydrogel dressings could improve diabetic wound healing by adjusting to wound conditions and controlling drug release.
February 2025 in “Skin Research and Technology” New non-invasive techniques can improve diagnosis and treatment of scalp and hair diseases.
February 2023 in “Molecules” Cactus extract from Notocactus ottonis may help promote hair growth.
22 citations
,
November 2014 in “Proteins Structure Function and Bioinformatics” Cysteines in wool fibers are accessible and form important disulfide bonds.
24 citations
,
January 2009 in “International Journal of Trichology” Sunlight exposure ages hair, making it brittle, stiff, and dry.
18 citations
,
January 2018 in “Advances in experimental medicine and biology” Hair keratins evolved from ancient proteins, diversifying through gene changes, crucial for forming claws and later hair in mammals.
14 citations
,
September 2016 in “Journal of Photochemistry and Photobiology B Biology” UV exposure damages hair, increasing thiols and altering protein structure.
6 citations
,
April 2005 in “Journal of dermatological science” The study found nine new hair protein genes in human hair follicles.
1 citations
,
January 2025 in “International Journal of Cosmetic Science” Age-related hair curvature increases due to internal structural changes from grooming.
1 citations
,
July 2024 in “International Journal of Dermatology Venereology and Leprosy Sciences” Cysteine strengthens hair, and glutamine fuels hair growth.
6 citations
,
February 2021 in “Proteins” Researchers found that the most reachable bonds in wool fibers are near the ends of certain proteins, which help stabilize the fiber's structure.
September 2025 in “International Journal of Cosmetic Science” Heat and UV exposure damage hair structure by altering keratins.
2 citations
,
September 1996 in “Journal of Applied Polymer Science” Potassium cyanide changes hair's disulfide bonds to monosulfide, affecting high-sulfur proteins more.