College of Pharmacy, Chongqing Engineering Research Center for Pharmacodynamics Evaluation, Chongqing Medical University, Chongqing 400016, China.
Orthopedic Research institution, Department of Orthopedics, West China Hospital, Sichuan University, Chengdu, 610041, China.
Acta Biomater. 2022 Mar 1;140:206-218. doi: 10.1016/j.actbio.2021.11.043. Epub 2021 Dec 5.
As the incidence of diabetes increases, its complication, diabetic foot ulcers, has become the main type of clinically chronic refractory wounds. Due to the hyperglycemic microenvironment of the diabetic wound, which leads to vascular defects and bacterial growth, the therapeutic effect of wound dressings lacking strategic design is relatively limited. In this study, we designed an injectable, "self-healing", and glucose-responsive multifunctional metal-organic drug-loaded hydrogel (DG@Gel) for diabetic wound healing. The functionalized hydrogel was prepared by phase-transfer-mediated metallo-nanodrugs, which were made by co-assembling zinc ions, organic ligands, and a small-molecule drug, deferoxamine mesylate (DFO), and the programmed loading of glucose oxidase (GOX). When injected into a diabetic wound, the GOX in DG@Gel changed the hyperglycemic wound microenvironment by decomposing excess glucose into hydrogen peroxide and glucuronic acid, which decreased the pH of the wound site. The low pH promoted the release of zinc ions and DFO, which exhibited synergistic antibacterial and angiogenesis activity for diabetic wound repair. In vitro experiments revealed the antibacterial activity and the cell proliferation, migration, and tube formation ability of DG@Gel. Moreover, in vivo experiments showed that DG@Gel can induce re-epithelialization, collagen deposition, and angiogenesis during wound healing in diabetic mice with good biocompatibility and biodegradability. The results suggest that this hydrogel is a promising innovative dressing for the treatment of diabetic wounds. STATEMENT OF SIGNIFICANCE: Diabetic ulcers, as one of the main types of chronic refractory wounds, are not treated effectively in the clinic due to a lack of strategic approach. In this study, we designed a glucose-responsive multifunctional metal-organic drug-loaded hydrogel (DG@Gel), which can change the hyperglycemic wound microenvironment by decomposing excess glucose into hydrogen peroxide and glucuronic acid. This in turn promoted the release of zinc ions and deferoxamine mesylate (DFO) in the hydrogel, which exhibited synergistic antibacterial and angiogenic activity for diabetic wound repair. Furthermore, the DG@Gel exhibited good biocompatibility and biodegradability in vivo. In general, this innovative strategy design may have great application potential in the treatment of various chronic wounds.
随着糖尿病发病率的增加,其并发症糖尿病足溃疡已成为临床上主要的慢性难治性创面类型。由于糖尿病创面的高血糖微环境导致血管缺陷和细菌生长,缺乏战略设计的创面敷料的治疗效果相对有限。在这项研究中,我们设计了一种可注射的、“自修复”和葡萄糖响应的多功能金属有机药物负载水凝胶(DG@Gel),用于糖尿病伤口愈合。功能化水凝胶是通过相转移介导的金属纳米药物制备的,该药物由锌离子、有机配体和小分子药物甲磺酸去铁胺(DFO)共聚组装而成,并程序化负载葡萄糖氧化酶(GOX)。当注入糖尿病伤口时,DG@Gel 中的 GOX 通过将过量的葡萄糖分解为过氧化氢和葡萄糖醛酸来改变高血糖的创面微环境,从而降低创面部位的 pH 值。低 pH 值促进了锌离子和 DFO 的释放,它们对糖尿病伤口修复表现出协同的抗菌和血管生成活性。体外实验揭示了 DG@Gel 的抗菌活性以及细胞增殖、迁移和管形成能力。此外,体内实验表明,DG@Gel 可以在糖尿病小鼠的伤口愈合过程中诱导再上皮化、胶原沉积和血管生成,具有良好的生物相容性和生物降解性。结果表明,这种水凝胶是治疗糖尿病伤口的一种有前途的创新敷料。
糖尿病溃疡作为主要的慢性难治性创面类型之一,由于缺乏战略方法,在临床上无法得到有效治疗。在这项研究中,我们设计了一种葡萄糖响应的多功能金属有机药物负载水凝胶(DG@Gel),它可以通过将过量的葡萄糖分解为过氧化氢和葡萄糖醛酸来改变高血糖的创面微环境。这反过来又促进了水凝胶中锌离子和甲磺酸去铁胺(DFO)的释放,它们对糖尿病伤口修复表现出协同的抗菌和血管生成活性。此外,DG@Gel 在体内表现出良好的生物相容性和生物降解性。总的来说,这种创新的策略设计可能在治疗各种慢性创面方面具有巨大的应用潜力。