September 2024 in “Journal of the American Academy of Dermatology” AH-001 could be a safer and more effective treatment for hair loss.
17 citations
,
May 2021 in “Journal of Cell Science” N1-acetylspermidine promotes hair follicle stem cell self-renewal.
10 citations
,
March 2023 in “Journal of Chemistry” New compounds show promise for treating benign prostate hyperplasia with fewer side effects.
2 citations
,
September 2025 in “Frontiers in Endocrinology” SARMs show promise but need more evidence to prove they're better than traditional androgens.
September 2002 in “Research Repository (Kingston University London)” Mimicking the steroid A-ring may help create effective enzyme inhibitors for prostate disease treatment.
August 2018 in “Biomedical Journal of Scientific & Technical Research” Treated hair can fight dandruff and odor even after several washes.
2 citations
,
January 2012 HSA nanoparticles can improve tamoxifen delivery for breast cancer treatment, reducing side effects.
13 citations
,
August 1985 in “The Journal of Dermatology” HKN-2 antibody targets specific skin and hair cells, showing keratin complexity.
March 2011 in “European Urology Supplements” The document concludes that a new biosensor can efficiently detect prostate cancer cells and that standardized referrals help find significant cancers effectively.
1 citations
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July 2020 in “Reviews in separation sciences” November 2025 in “Advanced Healthcare Materials” Charge-conversion chemistry improves hair-rebonding by enhancing penetration and strength.
23 citations
,
November 2021 in “Frontiers in Chemistry” Nanozymes could improve disease treatment and detection.
Arabidopsis Formin 2 stabilizes actin filaments to aid cell-to-cell trafficking.
5 citations
,
January 2017 in “Chalmers Publication Library (Chalmers University of Technology)” Cubosomes enhance antimicrobial peptide stability and effectiveness.
38 citations
,
October 2005 in “Expert opinion on therapeutic patents” Selective androgen receptor modulators (SARMs) are a promising type of drug for various health conditions due to their targeted actions.
April 2026 in “ACS Applied Materials & Interfaces” Sper-12 nanoparticles may help treat hair loss by delivering siRNA to target androgen receptors.
1 citations
,
January 1989 Four antibodies were developed to help study hair follicle cell differentiation.
The research developed new fortilin protein constructs for potential heart disease treatments.
26 citations
,
August 2016 in “ACS Applied Materials & Interfaces” A boronic acid copolymer quickly forms cell clusters, useful for tissue and tumor modeling.
25 citations
,
September 2014 in “SpringerPlus” Sheep have a unique gene, KAP8-2, that humans don't have, which may affect wool properties.
February 2020 in “Oxford University Press eBooks” The alpha-helix was confirmed as a key structure in proteins.
September 2002 in “Oncology Times” Promising cancer treatments were found, but the manufacturer closed.
Self-assembling peptide hydrogels effectively deliver drugs locally, enhancing treatment and reducing side effects.
12 citations
,
February 2010 in “Tetrahedron Letters” New minoxidil compounds with better water solubility were made, but their full effects and safety need more research.
May 2025 in “Journal of Developmental Biology” Jawless vertebrates have teeth proteins similar to those in mammalian hair and nails.
4 citations
,
October 2016 in “The journal of investigative dermatology/Journal of investigative dermatology” Using an anti-ICAM-1 antibody with rapamycin improves hair transplant survival in monkeys.
21 citations
,
October 2017 in “Cell death and disease” Sesn2 protects inner ear hair cells from damage by regulating certain cell survival pathways.
45 citations
,
August 2005 in “Bioorganic & medicinal chemistry” New compounds with carborane showed anti-androgen effects similar to flutamide.
12 citations
,
December 2011 in “Journal of Dermatological Science” The C-terminal tail of AHF/trichohyalin is essential for organizing keratin filaments in keratinocytes.
18 citations
,
February 2025 in “Macromolecular Rapid Communications” Thermo-responsive polymers in nanoparticles enable targeted drug delivery and advanced therapies by releasing drugs at specific temperatures.