March 2025 in “Pain Physician” Cooling the skin before injections reduces pain for patients with hair loss.
Processed fat, SVF, and PRP are safe and effective for facial rejuvenation and hair growth.
12 citations
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January 2007 in “Acta dermato-venereologica” Europe needs a clear system to watch over cosmetics for safety and to make sure product claims are true.
October 2025 in “Physiologia” Spermidine may improve skin health and hair growth by enhancing cell function.
38 citations
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June 2018 in “Plant & cell physiology/Plant and cell physiology” Changing the amount of PLC5 in Arabidopsis affects root growth and drought resistance, with less PLC5 slowing root growth and more PLC5 improving drought tolerance but hindering root hair growth.
February 2006 in “Inpharma Weekly”
14 citations
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May 2021 in “Marine Drugs” PDRN, derived from salmon sperm, shows promise in healing wounds, reducing inflammation, and regenerating tissues, but more research is needed to understand its mechanisms and improve its use.
December 2023 in “Medical Times” The MEST method increases cell yield and volume for regenerative medicine but needs more testing.
Choose FDA-cleared red light therapy devices and follow guidelines for safe use.
January 2026 in “Journal of Aesthetic Nursing” Polynucleotides improve skin quality and are safe and effective for rejuvenation.
3 citations
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March 2024 in “Discover Applied Sciences” Spirulina proteins can improve hair smoothness and strength in hair care products.
July 1998 in “Proceedings of SPIE” Low-power laser therapy is an effective, side-effect-free treatment that speeds up hair regrowth and crural ulcer healing.
September 2024 in “Cureus” A new method improves platelet testing for heart disease patients.
13 citations
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January 2021 in “Regenerative Medicine” Platelet lysate could be a valuable treatment for many diseases in regenerative medicine.
August 2020 in “International Journal of Dermatology and Venereology” PRP is an effective and safe treatment for hair loss in women.
July 2014 in “Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature” AA-PRP injections significantly promote hair growth but need better study design for clear efficacy.
January 2014 in “DOAJ (DOAJ: Directory of Open Access Journals)” Platelet rich plasma may be beneficial for treating hair loss.
13 citations
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July 2012 in “Dermatologic Surgery” Platelet-rich plasma (PRP) may help promote hair growth and improve graft survival after hair transplantation, but more research is needed to confirm its effectiveness and determine the best dosage.
January 2020 in “Springer eBooks” 12 citations
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January 2021 in “Springer eBooks”
January 2026 in “Archives of Internal Medicine Research” PRP, exosomes, and physical therapies show promise for hair and tissue repair, but need more research for optimization.
July 2024 in “Перспективи та інновації науки” PRP therapy can help heal sports injuries but needs standardized methods.
2 citations
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March 2023 in “Biomedicine & pharmacotherapy” Platelet lysate effectively promotes hair growth and improves hair thickness in people with androgenetic alopecia.
October 2023 in “Open Repository of the University of Porto (University of Porto)”
March 2024 in “Research Square (Research Square)” PRP injections don't significantly help with mild to moderate erectile dysfunction.
16 citations
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December 2019 in “Journal of Cellular and Molecular Medicine” Sonicated platelet-rich plasma boosts hair growth by activating stem cells.
October 2025 in “Skin Health and Disease” Photothermal conditioning of PRP shows promise for improving hair growth but needs more research for confirmation.
January 2025 in “SSRN Electronic Journal” September 2002 in “Oncology Times” Promising cancer treatments were found, but the manufacturer closed.
June 2026 in “ACS Applied Polymer Materials” This study presents a novel method for creating biofunctional polymer fibers by integrating DNA-programmable cell-free protein synthesis systems into fibers using solution blow spinning. The fibers successfully produce proteins in situ, maintaining biological activity after fabrication. The research highlights the fibers' potential applications in respirator masks and sampling swabs, showcasing their versatility as a platform for user-defined biological functions. The technique offers a promising approach for developing advanced materials for portable sensing, smart textiles, and active filtration, combining complex biological functionality with customizable fiber properties.