Related Experiment Video For Cell death
Updated: May 25, 2026

Deciphering High-Resolution 3D Chromatin Organization via Capture Hi-C
Published on: October 14, 2022
CHD4 is a copper sensor linking chromatin remodeling to cuproptosis
Yongjie Wang1, Runqiu Chi2, Congcong Zhang2
1Department of Clinical Laboratory Medicine, Shanghai Chest Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, 200030, China; Shanghai Key Laboratory of Thoracic Tumor Biotherapy, Shanghai Chest Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, 200030, China; Shanghai Institute of Thoracic Oncology, Shanghai Chest Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, 200030, China.
Abstract:
Cuproptosis is a copper-dependent regulated cell death pathway, but its connection to chromatin regulation is poorly understood. Here, we demonstrate that cuproptosis-sensitive tumor cells exhibit an "epigenetically primed" state with elevated chromatin accessibility and active histone marks. Multi-omics analyses reveal extensive chromatin reprogramming, including topologically associating domain (TAD) fusion and global reduction of enhancer-associated loops. We identify the chromatin remodeler CHD4, a core subunit of the NuRD complex, as a direct copper sensor. Copper ions bind to the CXXC domain of CHD4, triggering its ubiquitin-mediated degradation. As a negative regulator, CHD4 loss causes chromatin decompaction and de-represses the transcription factor HSF2, which directly transactivates the key cuproptosis executor FDX1. Genetic and pharmacological validations confirm the copper-CHD4-HSF2-FDX1 axis as a central regulator of cuproptosis susceptibility. In patient-derived models, high HSF2/FDX1 expression predicts enhanced response to cuproptosis inducers. Our work establishes an epigenetic mechanism linking copper sensing to cuproptosis and nominates the CHD4/HSF2/FDX1 axis as potential biomarkers and therapeutic targets for precision oncology.
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