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具有协同生物膜根除和增强再上皮化作用的可注射纳米复合水凝胶用于加速糖尿病伤口愈合

Injectable Nanocomposite Hydrogel with Synergistic Biofilm Eradication and Enhanced Re-epithelialization for Accelerated Diabetic Wound Healing.

作者信息

Zhao Yuanyuan, Zhang Jingwei, Zhang Guofeng, Huang Huimin, Tan Wen-Song, Cai Haibo

机构信息

State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, Shanghai 200237, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2024 Dec 18;16(50):69086-69102. doi: 10.1021/acsami.4c17855. Epub 2024 Dec 5.

Abstract

Diabetic wounds remain a critical clinical challenge due to their harsh microenvironment, which impairs cellular function, hinders re-epithelialization and tissue remodeling, and slows healing. Injectable nanocomposite hydrogel dressings offer a promising strategy for diabetic wound repair. In this study, we developed an injectable nanocomposite hydrogel dressing (HDL@W379) using LAP@W379 nanoparticles and an injectable hyaluronic acid-based hydrogel (HA-ADH-ODEX). This dressing provided a sustained, pH-responsive release of W379 antimicrobial peptides, effectively regulating the wound microenvironment to enhance healing. The HDL@W379 hydrogel featured multifunctional properties, including mechanical stability, injectability, self-healing, biocompatibility, and tissue adhesion. , the HDL@W379 hydrogel achieved synergistic biofilm elimination and subsequent activation of basal cell migration and endothelial cell tube formation. Pathway analysis indicated that the HDL@W379 hydrogel enhances basal cell migration through MEK/ERK pathway activation. In methicillin-resistant ()-infected diabetic wounds, the HDL@W379 hydrogel accelerated wound healing by inhibiting bacterial proliferation and promoting re-epithelialization, regenerating the granulation tissue, enhancing collagen deposition, and facilitating angiogenesis. Overall, this strategy of biofilm elimination and basal cell activation to continuously regulate the diabetic wound microenvironment offers an innovative approach to treating chronic wounds.

摘要

由于糖尿病伤口的微环境恶劣,会损害细胞功能、阻碍再上皮化和组织重塑并延缓愈合,因此仍然是一个严峻的临床挑战。可注射纳米复合水凝胶敷料为糖尿病伤口修复提供了一种有前景的策略。在本研究中,我们使用LAP@W379纳米颗粒和可注射的基于透明质酸的水凝胶(HA-ADH-ODEX)开发了一种可注射纳米复合水凝胶敷料(HDL@W379)。这种敷料能持续、pH响应性释放W379抗菌肽,有效调节伤口微环境以促进愈合。HDL@W379水凝胶具有多功能特性,包括机械稳定性、可注射性、自愈性、生物相容性和组织粘附性。此外,HDL@W379水凝胶实现了协同消除生物膜以及随后激活基底细胞迁移和内皮细胞管形成。通路分析表明,HDL@W379水凝胶通过激活MEK/ERK通路增强基底细胞迁移。在耐甲氧西林金黄色葡萄球菌感染的糖尿病伤口中,HDL@W379水凝胶通过抑制细菌增殖和促进再上皮化、使肉芽组织再生、增强胶原蛋白沉积以及促进血管生成来加速伤口愈合。总体而言,这种消除生物膜和激活基底细胞以持续调节糖尿病伤口微环境的策略为治疗慢性伤口提供了一种创新方法。

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