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氢键自驱动明胶甲基丙烯酸酯水凝胶,具有超弹性、自修复和水下自粘性,可用于无缝合的皮肤和胃部手术以及电子皮肤。

Hydrogen bonds autonomously powered gelatin methacrylate hydrogels with super-elasticity, self-heal and underwater self-adhesion for sutureless skin and stomach surgery and E-skin.

机构信息

Department of Plastic and Aesthetic Surgery, Nanfang Hospital of Southern Medical University, 1838 North Guangzhou Avenue, Guangzhou, Guangdong 510515, China; Department of Mechanical Engineering, Faculty of Engineerig, University of Manitoba, Winnipeg, MB R3T 2N2, Canada.

Institute of Burn Research, Southwest Hospital, Army Medical University, Chongqing, 400038, China.

出版信息

Biomaterials. 2018 Jul;171:83-96. doi: 10.1016/j.biomaterials.2018.04.023. Epub 2018 Apr 15.

Abstract

Interface-interaction induced self-healing and self-adhesive are a gem-like attribute inspired by our Mother Nature. Biocompatible gelatin methacrylate (GelMA) hydrogels exhibit tunable mechanical properties which are favorable in biomedical applications. However, it is difficult to integrate high stiffness, super-elasticity, large deformability and self-healing property together. Here, we report a GelMA-based double-network (DN) hydrogel with above properties by utilizing tannic acid (TA) as a multi-functional H-bond provider. We first investigated the morphological and mechanical properties' changes of GelMA over different TA's concentrations and treating times. In comparison to pristine GelMA hydrogel (10% w/v), the GelMA-TA hydrogels presented significant increase in ultimate stress (4.3-fold), compressive modulus (2.5-fold), and especially in elongation (6-fold). Adhesion properties of GelMA-TA can be tuned by TA and have been proven to be water-resistant. To test gels' feasibility in vivo, we applied GelMA-TA gels to close skin wound and gastric incision without suture. The results indicated the gels had the capabilities of promoting wound healing with superior tissue restoration and minimal tissue adhesion. Furthermore, integrated with carbon nanotubes, the GelMA-TA-carbon nanotube gel was an alternative self-healing electric skin with strain-sensitive conductivity. This work demonstrated a strategy to yield mechanically strong hydrogel adhesives for innovative biomedical applications.

摘要

界面相互作用诱导的自修复和自粘性是一种受大自然启发的宝石般的属性。生物相容性明胶甲基丙烯酸盐(GelMA)水凝胶具有可调节的机械性能,有利于生物医学应用。然而,将高刚度、超弹性、大变形性和自修复性能集成在一起是困难的。在这里,我们报告了一种基于 GelMA 的双网络(DN)水凝胶,具有上述特性,利用单宁酸(TA)作为多功能氢键供体。我们首先研究了 GelMA 在不同 TA 浓度和处理时间下的形态和力学性能变化。与原始的 GelMA 水凝胶(10%w/v)相比,GelMA-TA 水凝胶的极限应力(4.3 倍)、压缩模量(2.5 倍),特别是伸长率(6 倍)显著增加。GelMA-TA 的粘附性能可以通过 TA 进行调节,并且已经证明具有耐水性。为了测试凝胶在体内的可行性,我们将 GelMA-TA 凝胶应用于无需缝合的皮肤伤口和胃切口。结果表明,这些凝胶具有促进伤口愈合的能力,具有优异的组织修复和最小的组织粘连。此外,与碳纳米管集成的 GelMA-TA-碳纳米管凝胶是一种具有应变敏感性导电性的替代自修复电皮肤。这项工作展示了一种用于创新生物医学应用的机械强度高的水凝胶粘合剂的产生策略。

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