College of Life Science and Technology, Nano Biomedical Materials Research Center, Xinxiang Medical University, Xinxiang, 453003, P. R. China.
The Third Affiliated Hospital of Xinxiang Medical University, Xinxiang, 453003, P. R. China.
J Mater Chem B. 2023 Oct 25;11(41):9987-10002. doi: 10.1039/d3tb01512b.
Treating chronic wounds requires transition from proinflammatory M1 to anti-inflammatory M2 dominant macrophages. Based on the role of tumor extracellular vesicles (tEVs) in regulating the phenotypic switching from M1 to M2 macrophages, we propose that tEVs may have a beneficial impact on alleviating the overactive inflammatory microenvironment associated with refractory wounds. On the other hand, as a nitric oxide donor, -nitrosoglutathione (GSNO) can regulate inflammation, promote angiogenesis, enhance matrix deposition, and facilitate wound healing. In this study, a guar gum-based hydrogel with tEVs and GSNO was designed for the treatment of diabetic refractory wounds. This hybrid hydrogel was formed through the phenyl borate bonds, which can automatically disintegrate in response to the high reactive oxygen species (ROS) level at the site of refractory diabetic wounds, releasing tEVs and GSNO. We conducted a comprehensive evaluation of this hydrogel , which demonstrated excellent performance. Meanwhile, using a full-thickness excision model in diabetic mice, the wounds exposed to the therapeutic hydrogel healed completely within 21 days. The increased closure rate was associated with macrophage polarization and collagen deposition, accelerated fibroblast proliferation, and increased angiogenesis in the regenerating tissues. Therefore, this multifunctional hybrid hydrogel appears to be promising for clinical applications.
治疗慢性伤口需要从促炎 M1 型向抗炎 M2 型巨噬细胞转化。基于肿瘤细胞外囊泡(tEVs)在调节 M1 向 M2 型巨噬细胞表型转化中的作用,我们提出 tEVs 可能对缓解与难治性伤口相关的过度活跃的炎症微环境具有有益影响。另一方面,作为一氧化氮供体,-亚硝基谷胱甘肽(GSNO)可以调节炎症,促进血管生成,增强基质沉积,并促进伤口愈合。在本研究中,设计了一种基于瓜尔胶的水凝胶,其中负载 tEVs 和 GSNO,用于治疗糖尿病难治性伤口。该杂化水凝胶通过苯硼酸酯键形成,可以自动分解,以响应难治性糖尿病伤口部位的高活性氧(ROS)水平,释放 tEVs 和 GSNO。我们对这种水凝胶进行了全面评估,结果表明其性能优异。同时,在糖尿病小鼠的全层切除模型中,暴露于治疗性水凝胶的伤口在 21 天内完全愈合。闭合率的增加与巨噬细胞极化和胶原沉积、成纤维细胞增殖加速以及再生组织中的血管生成增加有关。因此,这种多功能杂化水凝胶似乎有望应用于临床。