Xiangyu Hu, Xiaofan Tan, Ihsan Ullah, Taosha Jin, Zhiqi Xu, Junyue Zhang, Zhenhai Pan, Youyong Yuan* and Jun Wang*,
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引用次数: 0
摘要
水凝胶生物胶粘剂以其机械柔软性和良好的生物相容性被广泛应用于组织工程、柔性电子等领域。然而,由于各种生物组织的机械强度存在差异,特定的水凝胶生物胶粘剂的机械性能很难轻易调节以适应不同的组织强度。本文提出了一种基于干燥交联机理的聚(甲基丙烯酰胺-聚乙二醇- n -羟基琥珀酰亚胺酯-共丙烯酸)聚乙二醇凝胶(MAP)生物粘合剂,并以聚乙二醇为溶剂构建了聚合物平台。与已有报道的水凝胶胶粘剂相比,MAP通过改变溶剂PEG的分子量和比例,可以将抗拉强度从130 kPa调节到1 MPa,断裂应变从149%调节到2653%。它对组织和各种基质也有很强的粘附性,在猪皮和玻璃上的剪切强度分别达到130 kPa和6.8 MPa。MAP在肌腱愈合和运动监测中的应用证明了水凝胶、器械和组织之间坚韧和柔顺的粘附。结合长期存储能力、3d打印能力、自修复能力和生物相容性,MAP代表了一种很有前途的生物粘合剂开发方法。
Velcro-Inspired Poly(ethylene glycol) Gel (PEGgel) for Robust Interface Adhesion Between Hydrogel, Device, and Tissue
Hydrogel bioadhesive is widely used in tissue engineering, flexible electronics, and other fields because of its mechanical softness and good biocompatibility. However, due to the differences in the mechanical strength of various biological tissues, the mechanical properties of specific hydrogel bioadhesives are difficult to easily adjust to adapt to different tissue strengths. Here, we propose a poly(methacrylamide-polyethylene glycol-N-hydroxysuccinimide ester-co-acrylic acid) PEGgel (MAP) bioadhesive based on the drying cross-linking mechanism and a polymer platform with PEG as the solvent. Compared with the reported hydrogel adhesives, MAP can adjust the tensile strength from 130 kPa to 1 MPa and the fracture strain from 149% to 2653% by modifying the molecular weight and proportion of solvent PEG. It also exhibits robust adhesion to tissues and various substrates, with its shear strength on pigskin and glass reaching 130 kPa and 6.8 MPa, respectively. The application of MAP for tendon healing and movement monitoring demonstrates the tough and compliant adhesion between hydrogel, device, and tissues. Combined with long-term storage capability, 3D-printable ability, self-healing ability, and biocompatibility, MAP represents a promising approach for the development of bioadhesives.
期刊介绍:
ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.