机械适应性Janus水凝胶增强无疤痕肌腱愈合与组织粘连预防。

Lu Tan, Yanqiu Wang, Chenxi Huyan, Menghuan Li, Dong Liu, Minghan Liu, Zhong Luo, Kaiyong Cai, Yan Hu
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引用次数: 0

摘要

肌腱损伤是一种常见的骨科创伤,但通常对现有的外科治疗反应不佳,这主要归因于细胞外基质(ECM)的错误生成和肌腱粘连的形成。在此,我们报道了一种具有非对称组织粘连特性的Janus动态水凝胶贴片,用于修复受损肌腱,导致其结构和功能特性的无疤痕恢复。Janus水凝胶贴片(PCP)是将含二氢咖啡酸的壳聚糖(CS-HCA)、脲嘧啶酮(UPy)接枝明胶和儿茶酚改性水性聚氨酯通过原位糊化在预半固化的抗粘剂聚氨酯层(PU层)上生长而成的肌腱粘合层(CP层)制备而成,增强了与受损肌腱的牢固粘合,同时避免了术后肌腱与周围组织之间的粘连。在肌腱的大机械负荷下,通过应力诱导结晶形成大量有序排列的结晶域,大大提高了PCP的机械强度,不仅提高了其在肌腱复杂的生物力学环境中的机械弹性,而且通过ECM重塑提供了最佳的生物力学刺激,增强了愈合肌腱的稳健性。此外,植入的PCP可以有效抑制炎症相关的信号通路,避免粘连,进一步加速肌腱愈合,同时防止瘢痕形成。PCP为临床治疗肌腱损伤提供了一种很有前途的方法。研究意义:该非对称组织粘接双层Janus水凝胶贴片(PCP)可以有效稳定动态组织伤口,并通过应变诱导结晶(SIC)策略充分承受机械应力,从而防止其在频繁运动和大振幅运动的情况下恶化和破裂。当植入损伤肌腱时,抗粘剂聚氨酯(PU)层的生物排斥特性和光滑的表面有效防止术后粘连,降低二次手术风险。此外,CP层中的羟基肉桂酸(HCA)成分通过抑制炎症相关信号通路,同时抑制粘连形成和加速肌腱再生来减轻局部炎症。该综合系统为实现无瘢痕肌腱修复同时有效预防组织粘连建立了全面的临床方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanically-adaptive Janus hydrogel enhances scarless tendon healing with tissue-adhesion prevention.

Tendon injuries are common orthopedic traumas but often respond poorly to existing surgical treatments, which is largely attributed to the misrouted extracellular matrix (ECM) generation and tendon adhesion formation. Herein, we report a Janus dynamic hydrogel-based patch with asymmetric tissue adhesive property for dressing damaged tendons, leading to scarless restoration of their structural and functional properties. The Janus hydrogel patch (PCP) is prepared by growing a tendon-adhesive layer (CP layer) constituted by dihydrocaffeic acid-containing chitosan (CS-HCA), ureido-pyrimidinone (UPy)-grafted gelatin and catechol-modified waterborne polyurethane atop a pre-semicured anti-adhesive polyurethane layer (PU layer) through in-situ gelatinization, which potentiates firm adhesion to the damaged tendon while avoiding post-surgical adhesion between tendon and surrounding tissues. The heavy mechanical load of tendon would trigger the formation of abundant orderly aligned crystalline domains through stress-induced crystallization that substantially enhances the mechanical strength of PCP, which not only improve its mechanical resilience in the complex biomechanical environment of tendons but also provides optimal biomechanical stimulation to enhance the robustness of the healing tendon through ECM remodeling. Furthermore, the implanted PCP could effectively suppress inflammation-relevant signaling pathways to avoid synechia and further accelerate tendon healing while preventing scar formation. The PCP offers a promising approach for tendon injury treatment in the clinics. STATEMENT OF SIGNIFICANCE: This asymmetric tissue-adhesive double-layer Janus hydrogel patch (PCP) can effectively stabilize dynamic tissue wounds and adequately withstands the mechanical stresses via a strain-induced crystallization (SIC) strategy, thereby preventing its deterioration and rupture in the context of frequent movements and large-amplitude motions. When implanted on damaged tendons, the bio-repelling nature and smooth surface of the anti-adhesive polyurethane (PU) layer effectively prevent postsurgical adhesion and reduce secondary surgery risks. Furthermore, the hydroxycinnamic acid (HCA) component within the CP layer alleviates local inflammation by suppressing inflammation-associated signaling pathways, concurrently inhibiting synechia formation and accelerating tendon regeneration. This integrated system establishes a comprehensive clinical approach for achieving scarless tendon repair while maintaining effective tissue-adhesion prevention.

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