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December 2022 in “bioRxiv (Cold Spring Harbor Laboratory)” The research reveals how early embryonic mouse skin develops from simple to complex structures, identifying various cell types and their roles in this process.
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November 2024 in “Scientific Reports” 16-MHA can restore damaged hair's protective barrier and moisture balance.
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October 2022 in “Journal of Biomedical Materials Research Part A” Magnesium oxide-infused membranes help heal wounds faster by reducing inflammation and promoting skin and hair follicle growth.
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July 2023 in “Journal of Functional Biomaterials” Bubble-based systems show promise for precise, targeted drug delivery and diagnosis, especially in cancer treatment.
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January 2024 in “Advanced science” Fibronectin-attached cell sheets improve wound healing and are safe and effective.
New peptide biomaterials based on RADA16-I hydrogel can improve wound healing and could be used for tissue engineering.
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Cornification is the process where living skin cells die to create a protective barrier, and problems with it can cause skin diseases.
L-PGDS has specific binding sites for its functions and could help in drug delivery system design.
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March 2018 in “Development” New imaging technologies help us see how stem cells work in living animals.