活性氧
硫氧还蛋白
氧化应激
化学
细胞内
硫氧还蛋白还原酶
细胞
细胞生物学
伤口愈合
发病机制
癌症研究
抗菌剂
下调和上调
信号转导
细胞疗法
新生血管
遗传增强
再生(生物学)
炎症
生物
再生医学
血管生成
促炎细胞因子
细胞毒性
氧化损伤
核苷酸还原酶
细胞因子
DNA损伤
基因表达
氧化磷酸化
作者
Jie Huang,Na Zhou,Mengmeng Cao,Xiaohan Zhang,Shujian Zhang,Xinrui Luan,Xuancheng Wei,Licheng Wang,Wenxuan Zhang,Zansheng Huang,Xinhua Shao,Li Gao,Yong Li,Han Jin
标识
DOI:10.1021/acsami.5c20140
摘要
Bacterial-infected wounds exhibit delayed healing due to numerous pathological factors, including excessive inflammatory responses, reactive oxygen species (ROS) accumulation, and impaired angiogenesis. Current clinical therapies predominantly employ antimicrobial monotherapy, failing to address the complex interplay among the other pathogenic factors. Herein, we synthesized multifunctional selenium-sulfur-doped carbon dots (SE/S-CDs) nanozymes using selenocystine and cysteine as precursors to simultaneously target multiple pathological hallmarks of infected wounds. Primarily, SE/S-CDs exerted potent antibacterial activity by compromising the integrity of bacterial cell membranes, thereby achieving robust pathogen clearance in infected wounds. Furthermore, owing to the presence of Se-S dynamic bonds, they can specifically activate the thioredoxin reductase (TrxR) pathway, efficiently scavenging ROS and alleviating the inflammatory response. In addition, SE/S-CDs upregulated the hypoxia-inducible factor 1α (HIF-1α) signaling pathway, promoting the expression of proangiogenic genes and accelerating neovascularization and tissue repair. Collectively, SE/S-CDs modulated the infected wound microenvironment through a coordinated "antibacterial-anti-inflammatory-antioxidant-proangiogenic" cascade, demonstrating excellent, integrated therapeutic outcomes. This integrated therapeutic strategy not only exhibits efficacy in infected wound treatment but also holds translational potential for other infection-related and oxidative stress-driven diseases.
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