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Published on: December 26, 2016
Pooled Genomic Screens Identify Anti-apoptotic Genes as Targetable Mediators of Chemotherapy Resistance in Ovarian
Elizabeth H Stover1,2,3, Maria B Baco3, Ofir Cohen1,2,3
1Department of Medical Oncology, Dana-Farber Cancer Institute, Boston, Massachusetts.
Abstract:
High-grade serous ovarian cancer (HGSOC) is often sensitive to initial treatment with platinum and taxane combination chemotherapy, but most patients relapse with chemotherapy-resistant disease. To systematically identify genes modulating chemotherapy response, we performed pooled functional genomic screens in HGSOC cell lines treated with cisplatin, paclitaxel, or cisplatin plus paclitaxel. Genes in the intrinsic pathway of apoptosis were among the top candidate resistance genes in both gain-of-function and loss-of-function screens. In an open reading frame overexpression screen, followed by a mini-pool secondary screen, anti-apoptotic genes including BCL2L1 (BCL-XL) and BCL2L2 (BCL-W) were associated with chemotherapy resistance. In a CRISPR-Cas9 knockout screen, loss of BCL2L1 decreased cell survival whereas loss of proapoptotic genes promoted resistance. To dissect the role of individual anti-apoptotic proteins in HGSOC chemotherapy response, we evaluated overexpression or inhibition of BCL-2, BCL-XL, BCL-W, and MCL1 in HGSOC cell lines. Overexpression of anti-apoptotic proteins decreased apoptosis and modestly increased cell viability upon cisplatin or paclitaxel treatment. Conversely, specific inhibitors of BCL-XL, MCL1, or BCL-XL/BCL-2, but not BCL-2 alone, enhanced cell death when combined with cisplatin or paclitaxel. Anti-apoptotic protein inhibitors also sensitized HGSOC cells to the poly (ADP-ribose) polymerase inhibitor olaparib. These unbiased screens highlight anti-apoptotic proteins as mediators of chemotherapy resistance in HGSOC, and support inhibition of BCL-XL and MCL1, alone or combined with chemotherapy or targeted agents, in treatment of primary and recurrent HGSOC. IMPLICATIONS: Anti-apoptotic proteins modulate drug resistance in ovarian cancer, and inhibitors of BCL-XL or MCL1 promote cell death in combination with chemotherapy.
Insights
In high-grade serous ovarian cancer, anti-apoptotic proteins drive chemotherapy resistance. Inhibiting BCL-XL or MCL1 enhances cell death, offering new treatment strategies for ovarian cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- High-grade serous ovarian cancer (HGSOC) initially responds to platinum and taxane chemotherapy but frequently develops resistance.
- Identifying genes that modulate chemotherapy response is crucial for improving HGSOC treatment outcomes.
Purpose of the Study:
- To systematically identify genes involved in chemotherapy resistance in HGSOC using functional genomic screens.
- To investigate the role of anti-apoptotic proteins in mediating resistance to cisplatin and paclitaxel.
Main Methods:
- Performed pooled functional genomic screens (gain-of-function and loss-of-function) in HGSOC cell lines treated with chemotherapy agents.
- Utilized overexpression and CRISPR-Cas9 knockout screens to identify resistance genes.
- Evaluated the effect of anti-apoptotic protein overexpression and specific inhibitors (BCL-XL, MCL1, BCL-2) in combination with chemotherapy and olaparib.
Main Results:
- Genes in the intrinsic apoptosis pathway were identified as key modulators of chemotherapy response.
- Overexpression of anti-apoptotic genes (BCL2L1, BCL2L2) conferred resistance, while their loss sensitized cells to chemotherapy.
- Inhibitors targeting BCL-XL and MCL1, but not BCL-2 alone, enhanced chemotherapy-induced cell death and sensitized cells to olaparib.
Conclusions:
- Anti-apoptotic proteins are significant mediators of chemotherapy resistance in HGSOC.
- Targeting BCL-XL and MCL1, in combination with chemotherapy or targeted therapies like olaparib, represents a promising strategy for treating primary and recurrent HGSOC.
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