Gao Yang, Deng Yuting, Geng Wei, Xiao Sutong, Wang Ting, Xu Xiaohui, Adeli Mohsen, Cheng Liang, Qiu Li, Cheng Chong
Department of Ultrasound, Frontiers Science Center for Disease-related Molecular Network, National Clinical Research Center for Geriatrics, Med-X Center for Materials, West China Hospital, Sichuan University, Chengdu, 610041, China.
College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, China.
Adv Mater. 2024 Sep;36(38):e2408787. doi: 10.1002/adma.202408787. Epub 2024 Aug 3.
Complex microenvironments with bacterial infection, persistent inflammation, and impaired angiogenesis are the major challenges in chronic refractory diabetic ulcers. To address this challenge, a comprehensive strategy with highly effective and integrated antimicrobial, anti-inflammatory, and accelerated angiogenesis will offer a new pathway to the rapid healing of infected diabetic ulcers. Here, inspired by the tunable reactive oxygen species (ROS) regulation properties of natural peroxisomes, this work reports the design of infectious and inflammatory microenvironments self-adaptive artificial peroxisomes with synergetic Co-Ru pair centers (APCR) for programmed diabetic ulcer therapy. Benefiting from the synergistic Co and Ru atoms, the APCR can simultaneously achieve ROS production and metabolic inhibition for bacterial sterilization in the infectious microenvironment. After disinfection, the APCR can also eliminate ROS to alleviate oxidative stress in the inflammatory microenvironment and promote wound regeneration. The data demonstrate that the APCR combines highly effective antibacterial, anti-inflammatory, and provascular regeneration capabilities, making it an efficient and safe nanomedicine for treating infectious and inflammatory diabetic foot ulcers via a programmed microenvironment self-adaptive treatment pathway. This work expects that synthesizing artificial peroxisomes with microenvironments self-adaptive and bifunctional enzyme-like ROS regulation properties will provide a promising path to construct ROS catalytic materials for treating complex diabetic ulcers, trauma, or other infection-caused diseases.
伴有细菌感染、持续性炎症和血管生成受损的复杂微环境是慢性难治性糖尿病溃疡面临的主要挑战。为应对这一挑战,一种集高效抗菌、抗炎和加速血管生成于一体的综合策略将为感染性糖尿病溃疡的快速愈合提供新途径。在此,受天然过氧化物酶体可调节活性氧(ROS)特性的启发,本文报道了一种具有协同钴-钌双中心(APCR)的感染性和炎症性微环境自适应人工过氧化物酶体的设计,用于糖尿病溃疡的程序化治疗。得益于钴和钌原子的协同作用,APCR能够在感染性微环境中同时实现ROS生成和代谢抑制以进行细菌杀菌。消毒后,APCR还能清除ROS以减轻炎症微环境中的氧化应激并促进伤口再生。数据表明,APCR兼具高效抗菌、抗炎和促血管再生能力,使其成为一种通过程序化微环境自适应治疗途径治疗感染性和炎症性糖尿病足溃疡的高效安全纳米药物。本文预计,合成具有微环境自适应和双功能类酶ROS调节特性的人工过氧化物酶体将为构建用于治疗复杂糖尿病溃疡、创伤或其他感染性疾病的ROS催化材料提供一条有前景的途径。