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具有 ROS 清除和局部氧合作用的生物制造纳米复合水凝胶加速糖尿病伤口愈合。

Bio-fabricated nanocomposite hydrogel with ROS scavenging and local oxygenation accelerates diabetic wound healing.

机构信息

State Key Laboratory of Materials-Oriented Chemical Engineering, College of Biotechnology and Pharmaceutical Engineering, College of Food Science and Light Industry, Nanjing Tech University, Nanjing, 211816, China.

Jiangsu National Synergetic Innovation Center for Advanced Materials, Nanjing Tech University, Nanjing, 211816, China.

出版信息

J Mater Chem B. 2022 Jun 1;10(21):4083-4095. doi: 10.1039/d2tb00343k.

Abstract

Chronic wounds, especially diabetic wounds, involve abnormally long inflammatory periods due to their pathological microenvironment of high reactive oxygen species (ROS) levels and lack of blood vessels. Here, a mild, simple and feasible fabrication approach, a sustained oxygenation system is proposed, consisting of MnO nanosheets and a dual-network hydrogel fabricated from natural biomaterials including silk fibroin (SF) and carboxymethyl cellulose (CMC). Compared with the initial value (61.09 kPa), the compression modulus of the dual-network hydrogel increased by 116.2% through the coordination of strong covalent bonds and sacrificial coordination bonds constructed by enzymatic crosslinking and UV-irradiation crosslinking; the intrinsic shear-thinning effect endows the dual-network hydrogel with satisfactory injectable properties to be customized as a predetermined shape to accommodate the irregular wounds of diabetes. The encapsulated MnO nanosheets can catalyze the excessive ROS into necessary O and, after co-incubating with the SF/CMC@MnO hydrogels, cells in oxidative stress show significantly lower ROS (3 times) and higher O (17 times) levels that are conductive to relieving oxidative stress, promoting angiogenesis and reducing inflammation . Meanwhile, these SF-based hydrogels can offset the overexpression of matrix metalloproteinases (MMPs) in diabetic wounds (more than 80%) and promote remodeling of the extracellular matrix. Eventually, wound healing rates >76% in 7 days and 100% in 14 days were achieved by the bio-fabricated nanocomposite hydrogel and are remarkably faster than the commercial dressing healing rates (<30% in 7 days and <80% in 14 days). These results indicate that this bio-fabricated hydrogel system with multiple and customizable functions has great promise in the personalized clinical care of chronic wounds.

摘要

慢性伤口,尤其是糖尿病伤口,由于其病理微环境中活性氧(ROS)水平高且血管缺乏,导致炎症期异常延长。在这里,提出了一种温和、简单且可行的制备方法,即持续供氧系统,该系统由 MnO 纳米片和由天然生物材料丝素蛋白(SF)和羧甲基纤维素(CMC)制成的双网络水凝胶组成。与初始值(61.09 kPa)相比,通过酶交联和紫外光交联构建的强共价键和牺牲配位键的协同作用,双网络水凝胶的压缩模量增加了 116.2%;双网络水凝胶的本征剪切稀化效应使其具有令人满意的可注射性能,可定制为预定形状以适应糖尿病不规则伤口。包封的 MnO 纳米片可以将过量的 ROS 催化为必要的 O,然后与 SF/CMC@MnO 水凝胶共孵育,在氧化应激下的细胞表现出明显更低的 ROS(3 倍)和更高的 O(17 倍)水平,有利于缓解氧化应激、促进血管生成和减少炎症。同时,这些基于 SF 的水凝胶可以抵消糖尿病伤口中基质金属蛋白酶(MMPs)的过度表达(超过 80%),并促进细胞外基质的重塑。最终,生物制造的纳米复合水凝胶在 7 天内的愈合率超过 76%,在 14 天内达到 100%,明显快于商业敷料的愈合率(7 天内小于 30%,14 天内小于 80%)。这些结果表明,这种具有多种可定制功能的生物制造水凝胶系统在慢性伤口的个性化临床治疗中具有很大的应用前景。

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