Wenxuan Zhang, Wenhan Geng, Yumei Fan, Pengxiu Cao, Ke Tan
Hepatocellular carcinoma (HCC), the most prevalent primary liver malignancy, is characterized by a rising global incidence, dismal prognosis, and high mortality rates attributed to its complex etiology and therapeutic resistance. Sorafenib, the first approved systemic therapy for advanced HCC, is limited by the rapid emergence of resistance, with approximately 60% of patients developing resistance within 6 months of treatment. This challenge highlights the urgent need to elucidate underlying mechanisms driving treatment failure. Ferroptosis, an iron-dependent form of regulated cell death driven by lipid peroxidation, has recently been recognized as a critical player in cancer biology. Accumulating evidence indicates that dysregulation of ferroptotic pathways, including persistent activation of nuclear factor erythroid 2-related factor 2 (NRF2) signaling, lipid metabolic reprogramming, reinforcement of the cystine/glutamate antiporter System Xc- and glutathione peroxidase 4 (GPX4) antioxidant axis, and iron metabolic dysregulation, is closely associated with sorafenib resistance. Importantly, these observations shift the focus from classical apoptosis-based resistance models to ferroptosis as an actionable vulnerability. In this review, we integrate current knowledge on the interplay between sorafenib and ferroptosis, highlighting how ferroptotic dysregulation contributes to therapeutic resistance. By elucidating these mechanisms, we further propose rational strategies to overcome sorafenib resistance by targeting ferroptosis pathways, such as modulating NRF2 activity, rewiring lipid metabolism, or enhancing iron-dependent oxidative stress. Overall, incorporating ferroptosis into the HCC resistance framework offers a promising avenue to improve sorafenib efficacy and patient outcomes.