Drug-Induced Epigenomic Plasticity Reprograms Circadian Rhythm Regulation to Drive Prostate Cancer toward Androgen Independence
Files
Publication date
2022-09-01
Authors
Linder, Simon
Hoogstraat, Marlous
Stelloo, Suzan
Eickhoff, Nils
Schuurman, Karianne
de Barros, Hilda
Alkemade, Maartje
Bekers, Elise M.
Severson, Tesa M.
Sanders, Joyce
Editors
Advisors
Supervisors
Document Type
Article
Metadata
Show full item recordCollections
License
taverne
Abstract
In prostate cancer, androgen receptor (AR)–targeting agents are very effective in various disease stages. However, therapy resistance inevitably occurs, and little is known about how tumor cells adapt to bypass AR suppression. Here, we performed integrative multiomics analyses on tissues isolated before and after 3 months of AR-targeting enzalutamide monotherapy from patients with high-risk prostate cancer enrolled in a neoadjuvant clinical trial. Transcriptomic analyses demonstrated that AR inhibition drove tumors toward a neuroendocrine-like disease state. Additionally, epigenomic profiling revealed massive enzalutamide-induced reprogramming of pioneer factor FOXA1 from inactive chromatin sites toward active cis-regulatory elements that dictate prosur-vival signals. Notably, treatment-induced FOXA1 sites were enriched for the circadian clock component ARNTL. Posttreatment ARNTL levels were associated with patients’ clinical outcomes, and ARNTL knockout strongly decreased prostate cancer cell growth. Our data highlight a remarkable cistromic plasticity of FOXA1 following AR-targeted therapy and revealed an acquired dependency on the circadian regulator ARNTL, a novel candidate therapeutic target. SIGNIFICANCE: Understanding how prostate cancers adapt to AR-targeted interventions is critical for identifying novel drug targets to improve the clinical management of treatment-resistant disease. Our study revealed an enzalutamide-induced epigenomic plasticity toward prosurvival signaling and uncovered the circadian regulator ARNTL as an acquired vulnerability after AR inhibition, presenting a novel lead for therapeutic development.
Keywords
Taverne, Oncology, SDG 3 - Good Health and Well-being
Citation
Linder, S, Hoogstraat, M, Stelloo, S, Eickhoff, N, Schuurman, K, de Barros, H, Alkemade, M, Bekers, E M, Severson, T M, Sanders, J, Huang, C C F, Morova, T, Altintas, U B, Hoekman, L, Kim, Y, Baca, S C, Sjöström, M, Zaalberg, A, Hintzen, D C, de Jong, J, Kluin, R J C, de Rink, I, Giambartolomei, C, Seo, J H, Pasaniuc, B, Altelaar, M, Medema, R H, Feng, F Y, Zoubeidi, A, Freedman, M L, Wessels, L F A, Butler, L M, Lack, N A, van der Poel, H, Bergman, A M & Zwart, W 2022, 'Drug-Induced Epigenomic Plasticity Reprograms Circadian Rhythm Regulation to Drive Prostate Cancer toward Androgen Independence', Cancer Discovery, vol. 12, no. 9, pp. 2074-2097. https://doi.org/10.1158/2159-8290.CD-21-0576