In situswelling of low-friction, high load-bearing self-bending bilayer hydrogels inspired by articular cartilage.

Jianfeng Chen, Chuan Li, Xiaoxiao Chen, Kui Zhou, Hanjing Li, Kai Peng, Yinong Yang, Yichuan Dai, Ben Huang
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Abstract

The articular cartilage is characterized by its gradient hierarchical structure, which exhibits excellent lubrication and robust load-bearing properties. However, its inherent difficulty in self-repair after damage presents numerous formidable challenges for cartilage repair. Inspired by the unique structure of articular cartilage, a biomimetic bilayer hydrogel composed of PAM (polyacrylamide) and PAM/SA (sodium alginate) is prepared using a two-stepin-situswelling method. The bilayer hydrogel demonstrates exceptional structural stability due to the interlayerin-situchemical cross-linking. Compared to monolayer hydrogels, the PAM-PAM/SA bilayer hydrogel demonstrates superior mechanical attributes, exhibiting a compressive strength of 1 MPa and a compressive modulus of 0.22 MPa. Furthermore, exploration of the tribological performance of the PAM-PAM/SA bilayer hydrogel have revealed its low-friction performance under high loads, with a coefficient of friction as low as 0.032. Finally, leveraging the differential swelling properties between the distinct layers of the PAM-PAM/SA bilayer hydrogel, a self-bending biomimetic cartilage capable of conforming to complex joint surfaces is fabricated. This highly lubricating, mechanically robust, and conformal biomimetic cartilage provides an effective means for addressing cartilage defects and joint diseases.

关节软骨激发的低摩擦、高承载自弯曲双层水凝胶的原位肿胀。
关节软骨的特点是其梯度分层结构,具有优异的润滑和坚固的承重性能。然而,软骨损伤后自身修复的困难给软骨修复带来了巨大的挑战。受关节软骨独特结构的启发,采用两步原位肿胀法制备了由PAM(聚丙烯酰胺)和PAM/SA(海藻酸钠)组成的仿生双层水凝胶。由于层间原位化学交联,双层水凝胶表现出优异的结构稳定性。与单层水凝胶相比,PAM-PAM/SA双层水凝胶具有优异的力学性能,抗压强度为1 MPa,抗压模量为0.22 MPa。此外,对PAM-PAM/SA双层水凝胶摩擦学性能的研究表明,PAM-PAM/SA双层水凝胶在高载荷下具有低摩擦性能,摩擦系数低至0.032。最后,利用PAM-PAM/SA双层水凝胶不同层之间的不同肿胀特性,制造出能够适应复杂关节表面的自弯曲仿生软骨。这种高度润滑、机械坚固、适形的仿生软骨为解决软骨缺陷和关节疾病提供了有效的手段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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