Polycatechol-based iron predators disrupt fungal iron homeostasis to drive selective antifungal action

N Nan Liu M Mingrui Cheng (Department of Ophthalmology, Shanghai Eye, Ear, Nose and Throat Hospital, Fudan University) Y Yuqi Tao (Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University) X Xingchen Sun (Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University) B Boyi Wu (Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University) W Wenjing Ma X Xujiao Zhou (Department of Ophthalmology, Shanghai Eye, Ear, Nose and Throat Hospital, State Key Laboratory of Brain Function and Disorders, Fudan University) J Jiaxu Hong J Jingjing Hu (Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University) Y Yiyun Cheng (Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University)

Abstract

Fungal infections pose a growing global health challenge, exacerbated by a scarcity of effective treatments and rising drug resistance. Although cationic polymers emerge as promising antifungal candidates owing to structural tunability, design flexibility, and resistance to proteolytic degradation, their clinical utility has been hampered by nonselective membrane-disruption mechanisms. Herein, we develop a class of polycatechols- termed fungal iron predators (FIPs), exhibit exceptional fungicidal activity and markedly low cytotoxicity. These FIPs can efficiently infiltrate fungal cells, selectively sequester labile iron, and disrupt iron homeostasis and metabolism. The ensuing iron starvation provokes severe mitochondrial dysfunction and energy collapse, culminating in fungal cell death. Through systemic optimization of cationic density and catechol stoichiometry, we obtained an FIP variant demonstrating potent antifungal activity with high selectivity toward fungi over mammalian cells, minimal propensity to induce resistance, and supplementary antioxidant properties. Remarkably, this FIP candidate shows robust therapeutic performance across multiple in vivo models of fungal infection. Critically, this work established a groundbreaking paradigm in polymer design: shifting the antifungal mechanism from traditional nonspecific membrane disruption to targeted intracellular metabolic interference. The general applicability of this strategy across diverse cationic polymer backbones opens avenues for developing next generation of precision antifungal agents.

Article Details

Volume / Issue Vol. 123, Issue 25
Published June 23, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

N

Nan Liu

M

Mingrui Cheng

Department of Ophthalmology, Shanghai Eye, Ear, Nose and Throat Hospital, Fudan University

Y

Yuqi Tao

Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University

X

Xingchen Sun

Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University

B

Boyi Wu

Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University

W

Wenjing Ma

X

Xujiao Zhou

Department of Ophthalmology, Shanghai Eye, Ear, Nose and Throat Hospital, State Key Laboratory of Brain Function and Disorders, Fudan University

J

Jiaxu Hong

J

Jingjing Hu

Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University

Y

Yiyun Cheng

Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University