11 citations
,
July 2024 in “Biomimetics” Injectable biomimetic gels can help heal tissues and deliver drugs but need improvements in strength and delivery.
9 citations
,
April 2021 in “Climacteric” Testosterone therapy is effective and safe for women with low sexual desire, but it's hard to access.
9 citations
,
May 2014 in “Clinical Cosmetic and Investigational Dermatology” Using tazarotene with GliSODin improves facial skin more than tazarotene alone.
7 citations
,
September 2023 in “Cancer Treatment Reviews” Managing side effects of endocrine therapy is crucial to improve adherence and survival in breast cancer patients.
3 citations
,
July 2025 in “Gels” Engineered protein hydrogels improve medical treatments by mimicking natural body structures.
3 citations
,
May 2024 in “Biomimetics” Bioactive biopolymers can improve diabetic wound healing by enhancing tissue regeneration.
2 citations
,
May 2025 in “Pharmaceutics” Exosomes could improve skin health and treat skin diseases, but more research is needed.
1 citations
,
August 2025 in “Bioengineering” Combining FTSC with TSN6 peptide greatly improves wound healing.
1 citations
,
January 2024 in “Fibrosis” Hydrogels show promise for scarless wound healing by reducing skin fibrosis.
February 2025 in “Journal of Tissue Viability” Dark skin is more prone to severe pressure ulcers due to reduced ceramide content and detection challenges.
23 citations
,
January 2017 in “Journal of Functional Biomaterials” Biomaterials can help reduce skin scarring and improve wound healing.
7 citations
,
August 2025 in “Journal of Nanobiotechnology” Bioengineered microneedles and nanomedicine offer promising, precise treatments for tissue regeneration.
18 citations
,
April 2010 in “Langmuir” Human hair surface varies in wettability, showing daily and monthly patterns.
17 citations
,
January 2023 in “International Journal of Cosmetic Science” Hydrophobic interactions affect virgin hair, while electrostatic interactions are key for bleached hair.
11 citations
,
January 2016 in “Biointerphases” The hair's outermost surface has multiple layers of lipids and proteins.
10 citations
,
January 2020 in “Royal Society Open Science” A new automated method accurately measures hair damage using microscopic images.
10 citations
,
January 1971 in “The American midland naturalist” A simple method can show hair's surface pattern.
1 citations
,
August 2022 in “Chemical engineering journal advances” Scientists made human hair magnetic by coating it with special nanoparticles.
June 2024 in “ChemBioChem” Replenishing free 18-MEA can help restore damaged hair surfaces.
April 2023 in “Han'gug miyong haghoeji/Journal of the Korean society of cosmetology” Direct heat perms cause more damage to hair than softening heat perms.
January 2026 in “Colloids and Surfaces B Biointerfaces” A silicone treatment makes damaged hair more water-resistant and stronger.
September 2024 in “Skin Research and Technology” AFM can help diagnose lichen planopilaris by identifying specific hair structure changes.
February 2024 in “Medicina” AFM can diagnose hair disorders by revealing detailed hair surface changes.
Water and fatty acids affect hair's surface differently based on hair damage, and models can help understand hair-cosmetic interactions.
September 2017 in “Journal of Investigative Dermatology” Hair care products used for 4 weeks made hair smoother.
February 2026 in “Cureus” Two methods reliably measure scalp area and hair count.
78 citations
,
October 2012 in “Biomaterials” Larger spheroids improve hair growth, but size doesn't guarantee thicker hair.
30 citations
,
January 1994 in “Micron” Mature hair surfaces are formed by keratinized cells with developed layers, not just modified plasma membranes.
25 citations
,
May 2019 in “Cosmetics” 18-MEA and cationic surfactants can restore and maintain hair's hydrophobic nature, improving its beauty and feel.
17 citations
,
July 2019 in “Scientific reports” Surface and internal treatments can help prevent hair lipid loss during washing.