Chen Jinghuang, Tang Xianqing, Sun Qihan, Ji Xin, Wang Xingbo, Liu Zhendong, Zhang Xu, Xu Haijiao, Yang Fan, Sun Jian, Yang Xiurong
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, PR China.
School of Applied Chemistry and Engineering, University of Science and Technology of China, Hefei 230026, PR China.
Bioact Mater. 2024 Nov 4;44:461-473. doi: 10.1016/j.bioactmat.2024.10.026. eCollection 2025 Feb.
causes high morbidity and mortality in nosocomial infections, and newly approved antibiotics have been declining for decades. A green and universal deprotonation-driven strategy is used to screen the guanylic acid-metal ion coordination polymer nanoparticles (GMC), instead of the failure of binding occurs when specific metal ion participation. We find that the precise pH-dependent oxidase-like activity of GMC-2 orchestrates a duple symphony of immune modulation for biofilm infections. Specifically, GMC-2-mediated reactive oxygen species (ROS) regulation triggers mitochondrial dysfunction and releases damage-associated molecular patterns, engaging pattern recognition receptors and resulting in endogenous innate immune activation. Meanwhile, GMC-2-triggered ROS generation in a mildly acidic biofilm environment destroys the biofilm, exposing exogenous pathogen-associated molecular patterns. GMC-2 cannot cause resistance for compared with conventional antibiotics. In an infected implant mouse model, biofilms were effectively eliminated by GMC-2-mediated triggering of innate and adaptive immunity. These findings provide a universal approach for facilitating the binding of biomolecules with metal ions and highlight the precise ROS-regulating platform plays a critical role in initiating endogenous and exogenous immune activation targeted for bacterial biofilm infection.
在医院感染中导致高发病率和死亡率,并且新批准的抗生素数量在几十年来一直在减少。我们采用了一种绿色且通用的去质子化驱动策略来筛选鸟苷酸 - 金属离子配位聚合物纳米颗粒(GMC),而不是在特定金属离子参与时出现结合失败的情况。我们发现GMC - 2精确的pH依赖性类氧化酶活性为生物膜感染编排了一曲免疫调节的双重交响乐。具体而言,GMC - 2介导的活性氧(ROS)调节触发线粒体功能障碍并释放损伤相关分子模式,激活模式识别受体并导致内源性先天免疫激活。同时,GMC - 2在轻度酸性生物膜环境中触发ROS生成,破坏生物膜,暴露外源性病原体相关分子模式。与传统抗生素相比,GMC - 2不会产生耐药性。在感染植入物小鼠模型中,GMC - 2介导的先天免疫和适应性免疫触发有效地消除了生物膜。这些发现为促进生物分子与金属离子的结合提供了一种通用方法,并突出了精确的ROS调节平台在启动针对细菌生物膜感染的内源性和外源性免疫激活中起关键作用。