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受贻贝启发的水凝胶中耐水网络的调谐用于坚固的湿组织和生物电子黏附。

Tuning Water-Resistant Networks in Mussel-Inspired Hydrogels for Robust Wet Tissue and Bioelectronic Adhesion.

机构信息

Key Laboratory of Advanced Technologies of Materials Ministry of Education, Institute of Biomedical Engineering, College of Medicine, Southwest Jiaotong University, Chengdu 610031, China.

School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China.

出版信息

ACS Nano. 2023 Feb 14;17(3):2745-2760. doi: 10.1021/acsnano.2c11053. Epub 2023 Feb 3.

Abstract

Hydrogels with robust wet adhesion are desirable for applications in aqueous environments. Wet adhesion arising from synergy between hydrophobic and catechol components in mussel foot proteins has been highlighted. However, optimizing hydrogels with multiple components is challenging because of their complex structure-property relationships. Herein, high-throughput screening of a series of hydrophobic alkyl monomers and adhesive catechol derivatives was used to systematically develop wet adhesive hydrogels. Short alkyl chains promote wet adhesion by repelling water at the adhesive interface, whereas long alkyl chains form strong hydrophobic interactions inside the hydrogel network that impede or dissipate energy for wet adhesion. The optimized wet adhesive hydrogel, containing short alkyl chain, was applied for rapid hemostasis and wound healing because of the synergistic effect of catechol and alkyl groups and its immunomodulation ability, which is revealed through a transcriptomic analysis. Conductive nanocomponents were incorporated into the optimized hydrogel to produce a wearable device, which was used for continuous monitoring human electrocardiogram (ECG) during swimming, and in situ epicardial ECG on a porcine living and beating heart. This study demonstrated an efficient and generalized molecular design strategy for multifunctional wet adhesive hydrogels.

摘要

具有强湿粘附性的水凝胶在水相环境中的应用是人们所期望的。贻贝足部蛋白质中疏水和亲酚成分的协同作用产生了湿粘附现象,这一点已经得到了强调。然而,由于其复杂的结构-性能关系,用多种成分来优化水凝胶具有挑战性。在此,通过对一系列疏水烷基单体和粘附性儿茶酚衍生物进行高通量筛选,系统地开发了具有湿粘附性的水凝胶。短烷基链通过在粘附界面排斥水来促进湿粘附,而长烷基链在水凝胶网络内部形成强疏水相互作用,阻碍或耗散湿粘附所需的能量。优化后的湿粘附水凝胶含有短烷基链,由于儿茶酚和烷基基团的协同作用及其免疫调节能力,可实现快速止血和伤口愈合,这通过转录组分析得到了揭示。将导电纳米复合材料掺入优化后的水凝胶中,制得一种可穿戴设备,可在游泳过程中对人体心电图(ECG)进行连续监测,并在跳动的猪活体心脏上进行原位心外膜 ECG 监测。本研究展示了一种用于多功能湿粘附水凝胶的高效且通用的分子设计策略。

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