A Stem-like Patient-Derived Ovarian Cancer Model of Platinum Resistance Reveals Dissociation of Stemness and Resistance

Author:

Suzuki Tise1,Conant Ashlyn1,Jung Yeonkyu12,Bax Ryan1,Antonissen Ashley12,Chen Wanqiu13,Yu Gary4,Ioffe Yevgeniya J.5,Wang Charles13ORCID,Unternaehrer Juli J.15ORCID

Affiliation:

1. Division of Biochemistry, Department of Basic Sciences, Loma Linda University, Loma Linda, CA 92354, USA

2. Department of Biology, California State University San Bernardino, San Bernardino, CA 92407, USA

3. Center for Genomics, Loma Linda University, Loma Linda, CA 92354, USA

4. Department of Population and Family Health, Mailman School of Public Health, Columbia University, New York, NY 10032, USA

5. Division of Gynecologic Oncology, Department of Gynecology and Obstetrics, Loma Linda University Medical Center, Loma Linda, CA 92354, USA

Abstract

To understand chemoresistance in the context of cancer stem cells (CSC), a cisplatin resistance model was developed using a high-grade serous ovarian cancer patient-derived, cisplatin-sensitive sample, PDX4. As a molecular subtype-specific stem-like cell line, PDX4 was selected for its representative features, including its histopathological and BRCA2 mutation status, and exposed to cisplatin in vitro. In the cisplatin-resistant cells, transcriptomics were carried out, and cell morphology, protein expression, and functional status were characterized. Additionally, potential signaling pathways involved in cisplatin resistance were explored. Our findings reveal the presence of distinct molecular signatures and phenotypic changes in cisplatin-resistant PDX4 compared to their sensitive counterparts. Surprisingly, we observed that chemoresistance was not inherently linked with increased stemness. In fact, although resistant cells expressed a combination of EMT and stemness markers, functional assays revealed that they were less proliferative, migratory, and clonogenic–features indicative of an underlying complex mechanism for cell survival. Furthermore, DNA damage tolerance and cellular stress management pathways were enriched. This novel, syngeneic model provides a valuable platform for investigating the underlying mechanisms of cisplatin resistance in a clinically relevant context, contributing to the development of targeted therapies tailored to combat resistance in stem-like ovarian cancer.

Funder

Loma Linda University

Publisher

MDPI AG

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