Department of Plastic Surgery and Regenerative Medicine, Fujian Medical University Union Hospital, Fuzhou 350001, China; Department of Plastic Surgery and Regenerative Medicine Institute, Fujian Medical University, Fuzhou 350001, China; Engineering Research Center of Tissue and Organ Regeneration, Fujian Province University, 350001, China; Department of Stem Cell Research Institute, Fujian Medical University, Fuzhou 350004, China.
College of Biological Science and Engineering, Fuzhou University, No. 2 Xueyuan Road, Fuzhou 350108, China; Fujian Key Laboratory of Medical Instrument and Pharmaceutical Technology, Fuzhou University, No. 2 Xueyuan Road, Fuzhou 350108, China.
Acta Biomater. 2023 Mar 15;159:111-127. doi: 10.1016/j.actbio.2023.01.052. Epub 2023 Feb 1.
Persistent oxidative stress and recurring waves of inflammation with excessive reactive oxygen species (ROS) and free radical accumulation could be generated by radiation. Exposure to radiation in combination with physical injuries such as wound trauma would produce a more harmful set of medical complications, which was known as radiation combined with skin wounds (RCSWs). However, little attention has been given to RCSW research despite the unsatisfactory therapeutic outcomes. In this study, a dual-nanoagent-loaded multifunctional hydrogel was fabricated to ameliorate the pathological microenvironment associated with RCSWs. The injectable, adhesive, and self-healing hydrogel was prepared by crosslinking carbohydrazide-modified gelatin (Gel-CDH) and oxidized hyaluronic acid (OHA) through the Schiff-base reaction under mild condition. Polydopamine nanoparticles (PDA-NPs) and mesenchymal stem cell-secreted small extracellular vesicles (MSC-sEV) were loaded to relieve radiation-produced tissue inflammation and oxidation impairment and enhance cell vitality and angiogenesis individually or jointly. The proposed PDA-NPs@MSC-sEV hydrogel enhanced cell vitality, as shown by cell proliferation, migration, colony formation, and cell cycle and apoptosis assays in vitro, and promoted reepithelization by attenuating microenvironment pathology in vivo. Notably, a gene set enrichment analysis of proteomic data revealed significant enrichment with adipogenic and hypoxic pathways, which play prominent roles in wound repair. Specifically, target genes were predicted based on differential transcription factor expression. The results suggested that MSC-sEV- and PDA-NP-loaded multifunctional hydrogels may be promising nanotherapies for RCSWs. STATEMENT OF SIGNIFICANCE: The small extracellular vesicle (sEV) has distinct advantages compared with MSCs, and polydopamine nanoparticles (PDA-NPs), known as the biological materials with good cell affinity and histocompatibility which have been reported to scavenge ROS free radicals. In this study, an adhesive, injectable, self-healing, antibacterial, ROS scavenging and amelioration of the radiation related microenvironment hydrogel encapsulating nanoscale particles of MSC-sEV and PDA-NPs (PDA-NPs@MSC-sEV hydrogel) was synthesized for promoting radiation combined with skin wounds (RCSWs). GSEA analysis profiled by proteomics data revealed significant enrichments in the regulations of adipogenic and hypoxic pathways with this multi-functional hydrogel. This is the first report of combining this two promising nanoscale agents for the special skin wounds associated with radiation.
持续的氧化应激和反复出现的炎症波,伴有过多的活性氧 (ROS) 和自由基积累,可能是由辐射引起的。辐射与物理损伤(如创伤)的结合会产生更有害的一系列医疗并发症,这被称为辐射合并皮肤伤口(RCSWs)。然而,尽管治疗效果不理想,但对 RCSW 的研究却很少受到关注。在这项研究中,制备了一种负载双纳米制剂的多功能水凝胶,以改善与 RCSWs 相关的病理性微环境。该可注射、粘附和自修复水凝胶是通过在温和条件下通过席夫碱反应交联 carbohydrazide 修饰的明胶(Gel-CDH)和氧化透明质酸(OHA)制备的。负载聚多巴胺纳米粒子(PDA-NPs)和间充质干细胞分泌的小细胞外囊泡(MSC-sEV),分别或联合缓解辐射引起的组织炎症和氧化损伤,增强细胞活力和血管生成。所提出的 PDA-NPs@MSC-sEV 水凝胶通过减轻体内微环境病理学,在体外通过细胞增殖、迁移、集落形成和细胞周期和凋亡检测显示出增强细胞活力的作用,并促进再上皮化。值得注意的是,蛋白质组学数据的基因集富集分析显示,脂肪生成和缺氧途径显著富集,这些途径在伤口修复中发挥着重要作用。具体来说,基于差异转录因子表达预测了靶基因。结果表明,负载 MSC-sEV 和 PDA-NP 的多功能水凝胶可能是治疗 RCSWs 的有前途的纳米疗法。
与间充质干细胞相比,小细胞外囊泡(sEV)具有明显的优势,而聚多巴胺纳米粒子(PDA-NPs)被称为具有良好细胞亲和力和组织相容性的生物材料,已被报道可清除 ROS 自由基。在这项研究中,合成了一种粘附性、可注射性、自修复性、抗菌性、清除 ROS 自由基和改善包含 MSC-sEV 和 PDA-NPs(PDA-NPs@MSC-sEV 水凝胶)的纳米颗粒的辐射相关微环境水凝胶,以促进辐射合并皮肤伤口(RCSWs)。蛋白质组学数据的 GSEA 分析显示,这种多功能水凝胶在脂肪生成和缺氧途径的调控方面有显著的富集。这是首次将这两种有前途的纳米级药物联合用于与辐射相关的特殊皮肤伤口。