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用于抗疲劳生物粘附和界面功能化的纳米晶须胶水。

Nanowhisker glues for fatigue-resistant bioadhesion and interfacial functionalization.

作者信息

Jiang Shuaibing, Jin Tony, Ning Tianqin, Yang Zhen, Ma Zhenwei, Huo Ran, Cheng Yixun, Kurdyla Davis, Lam Edmond, Long Rong, Moores Audrey, Li Jianyu

机构信息

Department of Mechanical Engineering, McGill University, Montreal, Quebec, Canada.

Center in Green Chemistry and Catalysis, Department of Chemistry, McGill University, Montreal, Quebec, Canada.

出版信息

Nat Commun. 2025 Jul 24;16(1):6826. doi: 10.1038/s41467-025-62019-y.

Abstract

Fatigue-resistant functional bioadhesion is desired in diverse applications ranging from wound management to wearable devices. Nanoparticle-based bioadhesives offer versatile functionality but suffer from weak adhesion and fatigue vulnerability due to tissue barriers and poor tissue interactions. Polymer chain-based bioadhesives can form tough bioadhesion but remain vulnerable to fatigue fracture. Here we demonstrate that rationally designed chitosan nanowhiskers glues achieve fatigue-resistant bioadhesion and interfacial functionalization via the combined high aspect ratio, rigidity, polymer-binding and network-forming properties. We deploy these glues using chemical enhancers, microneedle rollers, and ultrasound, enabling strong tissue anchorage despite tissue barriers. At low concentrations, the nanowhisker glue paired with a tough hydrogel achieves an interfacial fatigue threshold of 382 J m and adhesion energy exceeding 1000 J m. Transmission electron microscopy reveals a sandwiched nanowhisker layer interpenetrated with both hydrogels and tissues, creating an interface of high stiffness and strength that kinks and arrests interfacial cracks, ensuring unprecedented fatigue resistance. Further, the nanowhisker glue allows for versatile functionalization at the interface such as photothermal and sonodynamic effects. This work expands the performance and functionality of bioadhesives, opening new possibilities for medical and engineering applications.

摘要

从伤口处理到可穿戴设备等各种应用都需要抗疲劳的功能性生物粘附。基于纳米颗粒的生物粘合剂具有多种功能,但由于组织屏障和不良的组织相互作用,存在粘附力弱和易疲劳的问题。基于聚合物链的生物粘合剂可以形成坚韧的生物粘附,但仍然容易发生疲劳断裂。在此,我们证明了合理设计的壳聚糖纳米晶须胶水通过高纵横比、刚性、聚合物结合和网络形成特性的组合,实现了抗疲劳生物粘附和界面功能化。我们使用化学增强剂、微针滚轮和超声波来应用这些胶水,尽管存在组织屏障,仍能实现强大的组织锚固。在低浓度下,纳米晶须胶水与坚韧的水凝胶配对,实现了382 J/m的界面疲劳阈值和超过1000 J/m的粘附能。透射电子显微镜显示,纳米晶须层夹在水凝胶和组织之间,形成了一个具有高刚度和强度的界面,使界面裂纹发生扭结并停止扩展,确保了前所未有的抗疲劳性能。此外,纳米晶须胶水允许在界面进行多种功能化,如光热和声动力效应。这项工作扩展了生物粘合剂的性能和功能,为医学和工程应用开辟了新的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2166/12290001/dabca53b09fa/41467_2025_62019_Fig1_HTML.jpg

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