氧化还原
机制(生物学)
神经科学
病态的
治疗方法
评论文章
平衡
肿瘤微环境
化学
计算生物学
调解人
纳米技术
疾病
癌症研究
氧化还原
生物信息学
生物相容性材料
医学
计算机科学
细胞生物学
功能(生物学)
生物
透视图(图形)
信号转导
过程(计算)
细胞信号
作者
Kai Song,Wei Yu,Peng Jia,Shan He,Qian Wang,Manman Xu,Hongzhi Liu,Pengtao Bao,Shanyue Guan,Xiaozhong Qu
标识
DOI:10.1002/advs.202519115
摘要
Redox dysregulation is recognized as a key driver in the pathophysiology of numerous refractory diseases, contributing significantly to the progression and poor prognosis. The precise targeting and sophisticated modulation of redox processes within pathological microenvironments thus offer a promising avenue for innovative therapeutic strategies. Layered double hydroxides (LDHs)-based nanozyme lies in the programmable multi-active site architecture, which enables unprecedented functional integration for precise pathological microenvironment remodeling. In this review, the redox modulating mechanisms of LDHs-based nanozyme in these critical disease contexts are systematically explored, with special emphasis on intrinsic enzyme-like activities and structure-activity relationships. At the same time, it highlights how designing LDHs-based nanozyme can manipulate redox homeostasis to precisely reprogram the pathological microenvironment for stimulating effective, context-dependent pro- and anti-inflammatory therapeutic outcomes, which is a crucial requirement in conditions such as tumors and tissue injury. Finally, building upon recent advances, a forward-looking perspective is provided on the current challenges and future research directions in this rapidly progressing field.
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