Authors
Tongtong Zhang, Xiangyang Zhan, Jiexiang Zhang, Mingyue Tan, Chuanmin Chu, Guanqun Ju, Xinyu Zhai, Jianyi Gu, Huirong Zhu, Dongliang Xu
Published in
Advanced science (Weinheim, Baden-Wurttemberg, Germany). Pages e76958. Aug 05, 2026. Epub Aug 05, 2026.
Abstract
Ferroptosis can be therapeutically induced through GPX4 inhibition, but the mechanisms that determine ferroptosis sensitivity in prostate cancer remain incompletely understood. Here, we combined genome-wide CRISPR screening under graded GPX4 inhibition with mechanistic perturbation-rescue experiments and validation in xenograft and immunocompetent syngeneic prostate cancer models. We identified MEPCE loss as a conserved sensitizer to ferroptosis. Mechanistically, MEPCE depletion destabilized RN7SK and disrupted the HEXIM1-P-TEFb complex, consistent with CDK9 release and enhanced RNA polymerase II Ser2 phosphorylation, thereby promoting transcriptional elongation. This state accelerated activation of a NRF2/ARE stress program encompassing antioxidant defense and iron mobilization. Within this program, HMOX1 emerged as a kinetically sensitive effector whose rapid induction promoted labile iron accumulation and lipid peroxidation under GPX4 inhibition. In vivo, MEPCE suppression impaired tumor growth, enhanced the antitumor efficacy of ferroptosis induction, and was associated with pharmacodynamic markers of ferroptosis that were partially reversed by ferroptosis- or iron-targeted rescue. Together, these findings identify a transcriptional pause-control mechanism that links elongation dynamics to ferroptosis susceptibility and nominate the MEPCE-RN7SK-P-TEFb axis as a potential therapeutic target for sensitizing prostate cancer to ferroptosis.
PMID:
42554509
Bibliographic data and abstract were imported from PubMed on 05 Aug 2026.
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