Xiaoyu Guo, Zongang Liu, Xiaoman Li, Bingzheng Zhou, Jingyi Chen
Background Ovarian cancer (OC) is a leading cause of gynecologic cancer-related mortality, primarily due to frequent therapy resistance and disease recurrence. Growing evidence indicates that metabolic reprogramming serves as a critical adaptive mechanism, allowing cancer cells to survive therapeutic stress. Aim of review This review aims to decode the interplay between nutrient adaptation and therapy resistance in OC. It examines how alterations in key metabolic pathways contribute to treatment resilience and disease progression, and explores the potential of targeting metabolic vulnerabilities to improve therapeutic outcomes. Key scientific concepts of review We discuss how OC cells utilize metabolic pathways—including glycolysis, OXPHOS, glutamine metabolism, and lipid utilization—to promote survival, DNA repair, and immune evasion. Metabolic plasticity enables shifts between nutrient sources, driving resistance to platinum-based agents, PARP inhibitors, and anti-angiogenic therapies. These adaptations vary across subtypes, such as high-grade serous and clear cell carcinomas, and are influenced by specific mutations. Targeting metabolic enzymes—such as GLS, CPT1, OXPHOS complexes, or NAD + synthesis—offers a promising strategic direction. Metabolic profiling may allow stratification of OC patients and pave the way for precision medicine approaches to overcome treatment resistance.