September 2016 in “Journal of dermatological science” Adult skin cells can be used to create new hair in a lab.
May 2025 in “Dermatology Reports” Combining fat grafting and hair transplantation successfully restored hair in a woman with scarring alopecia.
3D bioprinting shows great promise for improving wound healing and skin restoration.
1 citations
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December 2010 in “Elsevier eBooks” Cell transplantation faces challenges in genitourinary reconstruction, but alternative tissue sources and microencapsulation show promise.
Researchers improved mouse skin cell culture methods and created a similar immortal cell line, but need to clarify their methods and benefits.
2 citations
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January 1974 in “Archives of Dermatological Research” Unknown factors significantly affect hair growth in skin grafts.
35 citations
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August 1987 in “In Vitro Cellular & Developmental Biology - Plant” The new device improves human hair follicle cell growth and differentiation.
212 citations
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August 2004 in “Proceedings of the National Academy of Sciences” Hair follicle cells can create new blood vessels in the skin.
January 2025 in “Advancements in Life Sciences” Autogenic and allogenic PRP effectively promote wound healing.
March 2026 in “Materials Today Bio” The new cryo-MAP technique enables rapid and successful hair growth by transplanting hair follicle organoids.
5 citations
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May 2005 in “Seminars in Plastic Surgery” Hair transplantation using micrografts and minigrafts is effective and safe for facial and scalp reconstruction with natural-looking results.
August 2019 in “Journal of The American Academy of Dermatology” The document concludes that using micropore tape on an 18-gauge needle can control depth in hair restoration surgery, reducing scalp trauma and complications.
1 citations
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July 2008 in “PubMed” Human hair keratin helps regenerate rat sciatic nerves by transforming Schwann cells and protecting axons.
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December 1994 in “Journal of Investigative Dermatology”
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December 2020 in “ACS biomaterials science & engineering” Human hair keratins can form stable nanofiber networks that might help in tissue regeneration.
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April 2017 in “Scientific Reports” Using a perfusion system and 3D spheroid culture improves the growth of corneal cell layers for tissue engineering.
Fraser's Dolphin can heal skin wounds with minimal scarring, unlike humans.
8 citations
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January 2010 in “Springer eBooks” Plastic surgeons need to understand skin anatomy and physiology to effectively treat aging and diverse skin types.
September 2014 in “Genes and Cells” Genetically modified umbilical cord blood cells improved skin wound healing in rats.
1 citations
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January 2010 Redistributing existing hair is the best solution for scalp alopecia.
71 citations
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February 2020 in “Journal of Translational Medicine” Progress has been made in skin and nerve regeneration, but more research is needed to improve methods and ensure safety.
201 citations
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August 2006 in “Cell and Tissue Research” July 2021 in “Plastic and reconstructive surgery. Global open” Verteporfin treatment in mice led to complete skin healing without scarring.
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July 2016 in “Journal of Biomedical Materials Research Part A” cGEL hydrogel improves melanin production in skin cells, making it a promising option for skin treatments.
2 citations
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January 2020 in “Methods in molecular biology” Scientists created early-stage hair follicles from human skin cells, which could help treat baldness and study hair growth.
June 1997 in “The American Journal of Cosmetic Surgery” Understanding the science of skin stretching is crucial for safe and effective hair replacement techniques.
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June 2025 in “Chemical Engineering Journal” The hydrogel helps heal seawater-immersed wounds by reducing infection and inflammation.
12 citations
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February 2025 in “Scientific Reports” MSC-EVs and UCB-EVs improve skin wound healing and reduce scarring.
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October 1987 in “Journal of Investigative Dermatology” February 2019 in “Dermatologic Surgery”