Drug-resilient Cancer Cell Phenotype Is Acquired via Polyploidization Associated with Early Stress Response Coupled to HIF2α Transcriptional Regulation.

Arthur Boffelli Castro, Emma U Hammarlund, Sofie Mohlin, Sarah R Amend, Catharina Hagerling, Charlie K Cornwallis, Andrea Biloglav, Etienne Baratchart, Niklas Engström, Anuraag Bukkuri, Hilda van den Bos, René Wardenaar, Auraya Manaprasertsak, Bertil Johansson, Christopher Carroll, Kenneth J Pienta, Floris Foijer, Alan McIntyre, Kajsa Paulsson, Minjun Yang, Marie Arsenian-Henriksson, Diana C J Spierings

Journal: Cancer research communications 2024;4(3):691-705

PMID: 38385626

Abstract

UNLABELLED

Therapeutic resistance and recurrence remain core challenges in cancer therapy. How therapy resistance arises is currently not fully understood with tumors surviving via multiple alternative routes. Here, we demonstrate that a subset of cancer cells survives therapeutic stress by entering a transient state characterized by whole-genome doubling. At the onset of the polyploidization program, we identified an upregulation of key transcriptional regulators, including the early stress-response protein AP-1 and normoxic stabilization of HIF2α. We found altered chromatin accessibility, ablated expression of retinoblastoma protein (RB1), and enrichment of AP-1 motif accessibility. We demonstrate that AP-1 and HIF2α regulate a therapy resilient and survivor phenotype in cancer cells. Consistent with this, genetic or pharmacologic targeting of AP-1 and HIF2α reduced the number of surviving cells following chemotherapy treatment. The role of AP-1 and HIF2α in stress response by polyploidy suggests a novel avenue for tackling chemotherapy-induced resistance in cancer.

SIGNIFICANCE

In response to cisplatin treatment, some surviving cancer cells undergo whole-genome duplications without mitosis, which represents a mechanism of drug resistance. This study presents mechanistic data to implicate AP-1 and HIF2α signaling in the formation of this surviving cell phenotype. The results open a new avenue for targeting drug-resistant cells.

© 2024 The Authors; Published by the American Association for Cancer Research.

Address: Department of Experimental Medical Science, Lund University, Lund, Sweden.; Lund Stem Cell Center (SCC), Lund University, Lund, Sweden.; Lund University Cancer Center (LUCC), Lund University, Lund, Sweden.; European Research Institute for the Biology of Ageing, University of Groningen, University Medical Centre Groningen, Groningen, the Netherlands.; Division of Clinical Genetics, Department of Laboratory Medicine, Lund University, Lund, Sweden.; Department of Biology, Lund University, Lund, Sweden.; Department of Experimental Medical Science, Lund University, Lund, Sweden.; Department of Microbiology, Tumor and Cell Biology (MTC), Karolinska Institutet, Biomedicum, Stockholm, Sweden.; Cancer Ecology Center, the Brady Urological Institute, Johns Hopkins University School of Medicine, Baltimore, Maryland.; Lund Stem Cell Center (SCC), Lund University, Lund, Sweden.; Lund University Cancer Center (LUCC), Lund University, Lund, Sweden.; Division of Pediatrics, Department of Clinical Sciences, Lund University, Lund, Sweden.; Hypoxia and Acidosis Group, Nottingham Breast Cancer Research Centre, School of Medicine, Biodiscovery Institute, University of Nottingham, Nottingham, United Kingdom.
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