Jian He, Yang Ye, Hongxia Yuan, Jiahua Niu, Dongxiao Zhang, Fuyao Chen, Qing Zhang, Jiancheng Liang, Zhongshu Wu, Ke Yao, Min Zhou
Severe infections caused by opportunistic fungal pathogens like Candida albicans remain a major clinical challenge, exemplified by vision-threatening fungal keratitis (FK). Targeting host-pathogen iron competition offers a promising antifungal strategy. Here, we identify a vicious cycle in human FK, where iron overload-driven host ferroptosis promotes fungal proliferation and inflammation. To disrupt this, we develop a spatiotemporally controlled gallium-deferiprone (Ga-DFP) composite hydrogel (PGaDH) that reprograms host-pathogen iron homeostasis through an iron-hijacking strategy. Specifically, PGaDH enables rapid DFP release to induce fungal iron starvation and activate iron acquisition pathways, followed by slow Ga3+ release that mimics Fe3+ and disrupts fungal iron-dependent energy metabolism. Concurrently, PGaDH suppresses host ferroptosis, fungal-induced oxidative stress, and mitogen-activated protein kinase (MAPK)/NF-κB-mediated inflammation. In mouse and rabbit FK models, PGaDH shows prolonged ocular retention, potent antifungal efficacy, and reliable safety. These findings establish a dual iron-hijacking platform with translational potential for fungal and related diseases.