电子传输链
生物物理学
细菌
电子转移
活性氧
电子
细胞内
线粒体
细胞生物学
NAD+激酶
材料科学
化学
化学渗透
新陈代谢
电子流
DNA
生物
微生物学
烟酰胺腺嘌呤二核苷酸
生物化学
DNA损伤
革兰氏阴性菌
纳米技术
氧气
渗透(战争)
作者
Mingzhi Huang,Qi Li,Zhuangzhuang Sun,Jiayi Liu,Zhiming Hou,Rongbing Tang
摘要
Most bactericides directly or indirectly disrupt the electron transport chain (ETC)-mediated energy metabolism to exert antibacterial effects. However, the consequent perturbation of electron transfer states (e.g., flux overload or blockade) leads to electron accumulation, which enhances reactive oxygen species (ROS) generation. High ROS concentrations kill bacteria, while sublethal levels induce DNA damage, thereby elevating antibiotic resistance risk. In this study, we found that shunting electrons at critical ETC nodes is able to disrupt bacterial energy metabolism, damaging bacteria without ROS generation. To leverage the ROS-free mechanism for infection control, we synthesized 5-aminotetrazole-functionalized gold nanocomplexes (ATZ-Au) that intercept electron transfer from electron donors to downstream carriers. This rapidly depletes reduced nicotinamide adenine dinucleotide (NADH), disrupts the proton motive force (PMF), impairs ATP synthesis, and blocks bacterial compensatory metabolic pathways, ultimately leading to lethal intracellular acidosis and metabolic collapse. This effect blocks the capture of electrons by oxygen, thereby preventing the generation of ROS. The ATZ-Au efficiently eliminates pathogenic bacteria in complex infections, providing a promising strategy to address antibiotic resistance.
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