Xin Jin, Yulong Hong, Chengliang Yin, Wanting Guo, Yaxuan Wang, Ruijiang Zeng, Ruilin Liu, Zexian Ding, Xinlin Liu, Shangqing Ren, Qiyang Liang, Yaohui Wang, X H Zhang, João Conde, Yuan Li, Xin Ma, Liangyou Gu
ABSTRACT Iron overload is a common metabolic disturbance in cancer and contributes to poor outcomes in renal cell carcinoma (RCC), yet its effects on the tumour immune microenvironment remain unclear. Here we identify a previously unrecognized immunosuppressive axis in which iron overload downregulates the palmitoyltransferase ZDHHC12 in CD8 + T cells, leading to impaired palmitoylation of the mitochondrial protein FDX1. This stabilizes FDX1 and drives cuproptosis, a recently described copper‐dependent cell death pathway, thereby compromising T cell effector function and diminishing responses to immune checkpoint blockade. To restore T cell activity, we engineered lipid nanoparticles (ZDHHC12‐LNPs) for the delivery of Zdhhc12. These nanoparticles exhibited optimal physicochemical properties, efficiently restored FDX1 palmitoylation, rescued CD8 + T cell function, and synergized with PD‐1 blockade in preclinical RCC models without inducing systemic toxicity. Our findings uncover the iron‐ZDHHC12‐FDX1 axis as a metabolic checkpoint of T cell immunity and demonstrate a nanotechnology‐based strategy to overcome iron‐driven immunosuppression, offering translational potential for patients with iron‐overloaded RCC.