生物粘附
材料科学
甲基丙烯酸
生物降解
水下
丙烯酸
纳米技术
胶粘剂
生物医学工程
组织粘连
粘附
智能聚合物
离体
生物相容性材料
表面改性
自愈水凝胶
体内
聚合物
药物输送
复合材料
化学工程
高分子化学
化学
有机化学
共聚物
工程类
生物技术
图层(电子)
地质学
海洋学
生物
作者
Jang Woo Yang,Kang‐Il Song,Jaeyun Lee,Sung Ho Park,Hyungkyu Huh,Geunho Choi,Hwa Hui Shin,Hyung Joon
标识
DOI:10.1002/adma.202310338
摘要
Customizable bioadhesives for individual organ requirements, including tissue type and motion, are essential, especially given the rise in implantable medical device applications demanding adequate underwater adhesion. While synthetic bioadhesives are widely used, their toxicity upon degradation shifts focus to biocompatible natural biomaterials. However, enhancing the adhesive strengths of these biomaterials presents ongoing challenges while accommodating the unique properties of specific organs. To address these issues, three types of customized underwater bioadhesive patches (CUBAPs) with strong, water-responsive adhesion and controllable biodegradability and stretchability based on bioengineered mussel adhesive proteins conjugated with acrylic acid and/or methacrylic acid are proposed. The CUBAP system, although initially nonadhesive, shows strong underwater adhesion upon hydration, adjustable biodegradation, and adequate physical properties by adjusting the ratio of poly(acrylic acid) and poly(methacrylic acid). Through ex vivo and in vivo evaluations using defective organs and the implantation of electronic devices, the suitability of using CUBAPs for effective wound healing in diverse internal organs is demonstrated. Thus, this innovative CUBAP system offers strong underwater adhesiveness with tailored biodegradation timing and physical properties, giving it great potential in various biomedical applications.
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