一种多功能、坚韧、可拉伸和透明的姜黄素水凝胶,具有强效抗菌、抗氧化、抗炎和血管生成功能,可用于糖尿病伤口愈合。

IF 8.3 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Xianmou Fan*, Jun Huang, Wanjun Zhang, Zhihong Su, Jin Li, Zeyong Wu and Peihua Zhang*, 
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引用次数: 0

摘要

糖尿病慢性伤口的治疗仍然面临巨大挑战,主要原因是伤口感染、过度炎症和伤口区域的外周血管病变。因此,开发一种高效的新型多功能水凝胶来加速糖尿病伤口愈合具有重要意义。中草药姜黄素(Cur)具有免疫调节和促进血管生成的特性,在促进糖尿病慢性伤口愈合方面显示出巨大的潜力。然而,姜黄素的水溶性低、生物利用度差以及化学性质不稳定等问题限制了其临床应用。为了解决目前的这些瓶颈问题,我们首次制备了新型聚乙烯醇(PVA)-壳聚糖(CS)/海藻酸钠(SA)-Cur(PCSA)水凝胶,并通过 CS 和 Cur 的迈克尔加成反应展示了上述引人入胜的性能。PCSA 水凝胶显示出多种动态键,具有很强的机械性能(拉伸应力:∼0.980 兆帕;韧性:∼258.45 kJ/m3;应变为 80% 时的抗压强度:∼7.38 兆帕)。这些耐人寻味的性能为细胞的迁移和增殖提供了最佳的微环境,同时也促进了血管的生长,导致早期血管生成。重要的是,实验结果表明 PCSA 水凝胶能有效地将促炎性 M1 巨噬细胞转化为抗炎性 M2 巨噬细胞,而无需在体外添加其他成分。得益于这些特性,在大鼠全厚糖尿病伤口模型中,PCSA 水凝胶可通过清除 ROS、下调 IL-1β 和上调 CD31 表达有效加速伤口愈合,从而促进血管生成和胶原沉积。这一策略不仅为糖尿病伤口愈合提供了一种简单、安全的咖喱基水凝胶,而且凸显了利用传统中药开发促进糖尿病伤口愈合的高性能生物材料的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Multifunctional, Tough, Stretchable, and Transparent Curcumin Hydrogel with Potent Antimicrobial, Antioxidative, Anti-inflammatory, and Angiogenesis Capabilities for Diabetic Wound Healing

A Multifunctional, Tough, Stretchable, and Transparent Curcumin Hydrogel with Potent Antimicrobial, Antioxidative, Anti-inflammatory, and Angiogenesis Capabilities for Diabetic Wound Healing

A Multifunctional, Tough, Stretchable, and Transparent Curcumin Hydrogel with Potent Antimicrobial, Antioxidative, Anti-inflammatory, and Angiogenesis Capabilities for Diabetic Wound Healing

The treatment of diabetic chronic wounds is still faced with great challenges, mainly due to wound infection, excessive inflammation, and peripheral vascular disease in the wound area. Therefore, it is of great importance to develop a novel multifunctional hydrogel with high efficiency to accelerate diabetic wound healing. Curcumin (Cur), a Chinese herbal, has shown great potential in enhancing the healing of diabetic chronic wounds because of its immunomodulatory and pro-angiogenic properties. However, its low aqueous solubility, poor bioavailability, and chemical instability have limited its clinical applications. To address these current bottlenecks, novel poly(vinyl alcohol) (PVA)–chitosan (CS)/sodium alginate (SA)–Cur (PCSA) hydrogels were prepared for the first time, and they demonstrated all of the above intriguing performances by the Michael addition reaction of CS and Cur. PCSA hydrogels show multiple dynamic bonds, which possess strong mechanical properties (tensile stress: ∼0.980 MPa; toughness: ∼258.45 kJ/m3; and compressive strength: ∼7.38 MPa at strain of 80%). These intriguing performances provided an optimal microenvironment for cell migration and proliferation and also promoted the growth of blood vessels, leading to early angiogenesis. Importantly, the experimental results demonstrated that PCSA hydrogels can effectively transform pro-inflammatory M1 macrophages into anti-inflammatory M2 macrophages without the need for additional ingredients in vitro. Benefiting from these characteristics, a full-thickness diabetic wound in a rat model demonstrated that PCSA hydrogels can effectively accelerate wound healing via ROS-scavenging, downregulation of IL-1β, and upregulation of CD31 expression, resulting in angiogenesis and collagen deposition. This strategy not only provides a simple and safe Cur-based hydrogel for diabetic wound healing but also highlights the significant potential for the development of high-performance biomaterials for promoting diabetic wound healing using traditional Chinese medicine.

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来源期刊
ACS Applied Materials & Interfaces
ACS Applied Materials & Interfaces 工程技术-材料科学:综合
CiteScore
16.00
自引率
6.30%
发文量
4978
审稿时长
1.8 months
期刊介绍: ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.
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