钌-槲皮素协同纳米疗法与巨噬细胞极化调节快速促进细菌感染创面愈合

IF 8.7 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Zhongxiong Fan , Guoyu Xia , Fukai Zhu , Nan Yang , Aixia Ma , Yanrong Shi , Ziwen Jiang , Xianhui Zhou , Zhenqing Hou
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引用次数: 0

摘要

细菌侵入创面组织引起的缺氧和炎症微环境严重阻碍了创面愈合。近年来,基于金属-多酚配合网络的光热疗法(PTT)因其强大的抗菌作用、破坏生物膜的能力和内在的酶样活性而受到广泛关注。在本研究中,通过过渡金属钌和槲皮素(QRs)之间的协同配位驱动自组装,构建了金属-多酚协同纳米治疗体系。这些QRs表现出优异的光热转化效率和抗菌性能,同时还能在炎症条件下催化过氧化氢分解成氧气。在体外lps刺激的缺氧巨噬细胞模型中,QRs处理可显著降低细胞内活性氧(ROS)水平,缓解缺氧,从而下调缺氧诱导因子-1α (HIF-1α)表达,促进巨噬细胞从促炎M1表型向抗炎M2表型极化。在小鼠细菌性创面感染模型中,QRs有效抑制肿瘤坏死因子-α (TNF-α)和白细胞介素-6 (IL-6)等炎性细胞因子的表达,同时促进内皮细胞增殖,增加创面部位M2巨噬细胞的比例。这些变化共同促进了伤口及时过渡到重塑阶段,并最大化了内源性免疫细胞的再生潜力。总的来说,这项工作强调了钌基材料在光热抗菌治疗中的潜力,并提出了一种有希望的策略来重塑伤口微环境以增强组织修复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ruthenium-quercetin coordinated nanotherapeutics with macrophage polarization regulation to rapidly promote bacterial-infected wound healing
The hypoxic and inflammatory microenvironment induced by bacterial invasion of wound tissue severely hinders the healing process. In recent years, photothermal therapy (PTT) based on metal–polyphenol coordination networks has garnered considerable attention due to its potent antibacterial effects, biofilm-disrupting capabilities, and intrinsic enzyme-like activities. In this study, a metal–polyphenol coordinated nanotherapeutic system was constructed via synergistic coordination-driven self-assembly between the transition metal ruthenium and quercetin (referred to as QRs). These QRs demonstrated excellent photothermal conversion efficiency and antibacterial performance, while also catalyzing the decomposition of hydrogen peroxide into oxygen under inflammatory conditions. In an in vitro LPS-stimulated hypoxic macrophage model, treatment with QRs significantly reduced intracellular reactive oxygen species (ROS) levels and alleviated hypoxia, thereby downregulating hypoxia-inducible factor-1α (HIF-1α) expression and promoting macrophage polarization from the proinflammatory M1 phenotype to the anti-inflammatory M2 phenotype. In a murine bacterial wound infection model, QRs effectively suppressed the expression of inflammatory cytokines, including tumor necrosis factor-α (TNF-α) and interleukin-6 (IL-6), while enhancing endothelial cell proliferation and increasing the proportion of M2 macrophages at the wound site. These changes collectively facilitated the timely transition of the wound into the remodeling phase and maximized the regenerative potential of endogenous immune cells. Overall, this work highlights the potential of ruthenium-based materials for photothermal antibacterial therapy and proposes a promising strategy to remodel the wound microenvironment for enhanced tissue repair.
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来源期刊
CiteScore
8.30
自引率
4.90%
发文量
303
审稿时长
30 days
期刊介绍: Materials Today Bio is a multidisciplinary journal that specializes in the intersection between biology and materials science, chemistry, physics, engineering, and medicine. It covers various aspects such as the design and assembly of new structures, their interaction with biological systems, functionalization, bioimaging, therapies, and diagnostics in healthcare. The journal aims to showcase the most significant advancements and discoveries in this field. As part of the Materials Today family, Materials Today Bio provides rigorous peer review, quick decision-making, and high visibility for authors. It is indexed in Scopus, PubMed Central, Emerging Sources, Citation Index (ESCI), and Directory of Open Access Journals (DOAJ).
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