Tianyi Jiang, Xiaowan Huang, Zhixin Wu, Gulinaizaier Abudusaimaiti, Yang Song, Hongtao Duan, Yuping Zhou, Yaoxu Chen, Sitong Du, Hao Zhang, Jieying Qian, Yunjiao Zhang
Metal ions are increasingly recognized as regulators of immune function, yet their application in cancer immunotherapy remains underexplored. Here, we identified cobalt ions (Co2+) as potent suppressors of IFN-γ-induced IDO1 expression through systematic screening of biologically relevant metal ions. Across multiple cancer cell lines, Co2+ notably reduced IDO1 expression and kynurenine production. Mechanistically, Co2+ destabilized IFNGR1 and inhibited IFN-γ-JAK-STAT1 signaling, thereby restoring kynurenine/tryptophan metabolic balance and alleviating immunosuppression of CD8+ T cell. These effects reprogrammed the immunosuppressive tumor microenvironment toward enhanced cytotoxic T cell activity. To minimize the toxicity associated with free Co2+, we developed ConaHA, a hyaluronic acid-based nanoparticle platform enabling sustained and tumor-targeted cobalt delivery. ConaHA enhanced cobalt-mediated immune checkpoint blockade in vivo, resulting in notably improved antitumor efficacy in subcutaneous Panc02, MC38, and B16F10 tumor models and KPC (LSL-KrasG12D/+; LSL-Trp53R172H/+; Pdx-1-Cre) models. Collectively, these findings reveal a previously unrecognized immunoregulatory role of Co2+ and establish a promising framework for metalloimmunotherapy through modulation of metal-immune signaling pathways.