DOI: 10.3390/life16101607 ISSN: 2075-1729

Quantitative Proteomic Analysis Reveals That Central Metabolic Pathways Influence Norfloxacin Susceptibility in Vibrio alginolyticus

Chenghao Shen, Yanchang Wu, Jiaqi Tang, Xiaopei Cai, Ying Zhou, Yankai Liu, Ramanathan Srinivasan, Dianqi Zhang, Xiangmin Lin, Ling Lin

Reduced antibiotic susceptibility often involves reversible metabolic reprogramming. Here, data-independent acquisition (DIA)-based quantitative proteomics was employed to profile the response of Vibrio alginolyticus (V. alginolyticus) to norfloxacin (NOR) exposure, revealing a global metabolic downshift marked by prominent reductions in central carbon, energy, and amino acid pathways. High-throughput phenotypic screening identified 11 exogenous metabolites, including glycine (Gly) and glutamine (Gln), that significantly potentiated NOR-mediated growth inhibition. Mechanistically, physiological assays demonstrated that glycine supplementation perturbed cellular redox balance, accompanied by elevated reactive oxygen species (ROS) levels and a reduction in the intracellular reduced glutathione (GSH) pool under NOR challenge. Furthermore, mRNA expression analysis (qPCR) revealed that while NOR restricted transcripts of the downstream anaplerotic Gln-to-2-oxoglutarate axis, including the 2-oxoglutarate dehydrogenase complex and NAD+-dependent glutamate dehydrogenase, exogenous Gln supplementation effectively alleviated this transcriptional suppression. Collectively, these findings demonstrate that targeted metabolite supplementation overrides defensive low-flux states, forcing metabolic and transcriptional reactivation that intensifies antibiotic efficacy via ROS-mediated oxidative stress and impairment of antioxidant defense.