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Updated: Oct 4, 2026

Tools to Study the Role of Architectural Protein HMGB1 in the Processing of Helix Distorting, Site-specific DNA Interstrand Crosslinks
Published on: November 10, 2016
Transcription remodeling and stalling by cisplatin-induced interstrand crosslinks
Liulian Zhu1,2, Weiqi Zhao1,2, Lei Ye1,2
1Department of Genetics and Metabolism, Children's Hospital, Zhejiang University School of Medicine, National Clinical Research Center for Children and Adolescents' Health and Diseases, Hangzhou, China.
Abstract:
Interstrand crosslinks (ICLs) block transcription by mechanisms that remain incompletely understood. Cisplatin induces ICLs that suppress transcription and contribute to its antitumor activity but these effects can be mitigated by transcription-coupled repair. Using reconstituted transcription systems and cryo-electron microscopy, we investigated how RNA polymerase II (Pol II) processes cisplatin-ICLs and captured eight sequential transcriptional states. Pol II unexpectedly remodels the crosslinked guanines into a novel conformation positioned above the bridge helix. This rearranged ICL prevents the damaged base from entering the active site and triggers Pol II backtracking following ATP misincorporation. Furthermore, Cockayne syndrome protein B, an ATP-dependent translocase that initiates transcription-coupled repair, neither promotes lesion bypass nor displaces stalled Pol II, thereby committing the lesion to transcription-coupled repair. These findings identify Pol II as a structural remodeler of cisplatin-ICLs and reveal how the remodeled lesion stalls transcription, providing insight into cellular responses to platinum-based chemotherapy.
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