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自生长水凝胶生物粘合剂用于慢性伤口管理。

Self-Growing Hydrogel Bioadhesives for Chronic Wound Management.

机构信息

Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.

Engineering Research Center for Nanomaterials, Henan University, Kaifeng, 475004, China.

出版信息

Adv Mater. 2024 Oct;36(41):e2408538. doi: 10.1002/adma.202408538. Epub 2024 Aug 16.

Abstract

Hydrogel bioadhesives have emerged as a promising alternative to wound dressings for chronic wound management. However, many existing bioadhesives do not meet the functional requirements for efficient wound management through dynamically mechanical modulation, due to the reduced wound contractibility, frequent wound recurrence, incapability to actively adapt to external microenvironment variation, especially for those gradually-expanded chronic wounds. Here, a self-growing hydrogel bioadhesive (sGHB) patch that exhibits instant adhesion to biological tissues but also a gradual increase in mechanical strength and interfacial adhesive strength within a 120-h application is presented. The gradually increased mechanics of the sGHB patch could effectively mitigate the stress concentration at the wound edge, and also resist the wound expansion at various stages, thus mechanically contracting the chronic wounds in a programmable manner. The self-growing hydrogel patch demonstrated enhanced wound healing efficacy in a mouse diabetic wound model, by regulating the inflammatory response, promoting the faster re-epithelialization and angiogenesis through mechanical modulation. Such kind of self-growing hydrogel bioadhesives have potential clinical utility for a variety of wound management where dynamic mechanical modulation is indispensable.

摘要

水凝胶生物粘合剂已成为慢性伤口管理中替代伤口敷料的一种有前途的方法。然而,由于减少了伤口收缩性、频繁的伤口复发、无法主动适应外部微环境变化的能力,许多现有的生物粘合剂无法通过动态机械调节来满足有效伤口管理的功能要求,特别是对于那些逐渐扩大的慢性伤口。在这里,提出了一种自增长水凝胶生物粘合剂(sGHB)贴片,它具有即时粘附在生物组织上的能力,但在 120 小时的应用过程中机械强度和界面粘附强度逐渐增加。sGHB 贴片逐渐增加的力学性能可以有效地减轻伤口边缘的应力集中,并且还可以抵抗各个阶段的伤口扩张,从而以可编程的方式机械收缩慢性伤口。这种自增长水凝胶贴片通过机械调节,调节炎症反应,促进更快的再上皮化和血管生成,在小鼠糖尿病伤口模型中显示出增强的伤口愈合效果。这种自增长水凝胶生物粘合剂具有潜在的临床应用价值,可用于各种需要动态机械调节的伤口管理。

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