Cryo-EM structure-based discovery of etravirine as a specific inhibitor of PRMT5/pICln protein-protein interaction for prostate cancer treatment

Protein arginine methyltransferase 5 (PRMT5) is overexpressed in many cancers and correlates with poor patient survival. In prostate cancer, PRMT5 cooperates with its cofactor pICln to promote tumour growth by epigenetically activating androgen receptor (AR) expression. Using a near-atomic cryo-EM structure of PRMT5/MEP50/pICln complex, we identified a previously undefined, pICln-specific protein-protein interaction (PPI) interface on PRMT5, termed P4I. Structure-based virtual screening identified the FDA-approved compound etravirine as a binder to this site. BiFC, Co-IP, and PLA assays confirmed that etravirine disrupts PRMT5/pICln interaction. A cryo-EM structure of PRMT5/MEP50/etravirine further validated on-target binding at P4I. Functionally, etravirine reduced prostate cancer cell proliferation, inhibited tumour growth, and downregulated AR and AR-V7 expression in cells and in mouse models. These results demonstrate that the unique P4I interface is a promising therapeutic target and that etravirine serves as a proof-of-concept lead compound for exploring the potential of P4I-targeted strategies in prostate cancer.

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Publication Details

Journal
Journal of Enzyme Inhibition and Medicinal Chemistry
Published
2026-09-08
DOI
https://doi.org/10.1080/14756366.2026.2727844
Primary Topic
Cancer-related gene regulation
Type
article
Field-Weighted Citation Impact
0.00

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article

Cryo-EM structure-based discovery of etravirine as a specific inhibitor of PRMT5/pICln protein-protein interaction for prostate cancer treatment

Chang‐Deng Hu, Bennett D. Elzey, Zhihang Shen, Xuehong Deng et al.
Journal of Enzyme Inhibition and Medicinal Chemistry
Cancer-related gene regulation
article

Cryo-EM structure-based discovery of etravirine as a specific inhibitor of PRMT5/pICln protein-protein interaction for prostate cancer treatment

Chang‐Deng Hu, Bennett D. Elzey, Zhihang Shen, Xuehong Deng, Xueyong Xu, Wen Jiang, Zhixia Chi, Chenglong Li
article en

Abstract

Protein arginine methyltransferase 5 (PRMT5) is overexpressed in many cancers and correlates with poor patient survival. In prostate cancer, PRMT5 cooperates with its cofactor pICln to promote tumour growth by epigenetically activating androgen receptor (AR) expression. Using a near-atomic cryo-EM structure of PRMT5/MEP50/pICln complex, we identified a previously undefined, pICln-specific protein-protein interaction (PPI) interface on PRMT5, termed P4I. Structure-based virtual screening identified the FDA-approved compound etravirine as a binder to this site. BiFC, Co-IP, and PLA assays confirmed that etravirine disrupts PRMT5/pICln interaction. A cryo-EM structure of PRMT5/MEP50/etravirine further validated on-target binding at P4I. Functionally, etravirine reduced prostate cancer cell proliferation, inhibited tumour growth, and downregulated AR and AR-V7 expression in cells and in mouse models. These results demonstrate that the unique P4I interface is a promising therapeutic target and that etravirine serves as a proof-of-concept lead compound for exploring the potential of P4I-targeted strategies in prostate cancer.

Journal of Enzyme Inhibition and Medicinal ChemistryVol. 41(1)
Pennsylvania State University (US), Purdue University West Lafayette (US), University of Florida (US), Purdue University Institute for Cancer Research
Purdue University, Purdue Institute for Drug Discovery, National Cancer Institute, Cairo University, U.S. Army Medical Research Acquisition Activity
Good health and well-being
Openalex Percentile: Top 18%
Cancer-related gene regulation
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