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Small-Molecule-Mediated Stabilization of PP2A Modulates the Homologous Recombination Pathway and Potentiates DNA
Rita A Avelar1,2, Amy J Armstrong3, Gracie Carvette1,2
1Department of Pathology, University of Michigan, Ann Arbor, Michigan.
Abstract:
High-grade serous carcinoma (HGSC) is the most common and lethal ovarian cancer subtype. PARP inhibitors (PARPi) have become the mainstay of HGSC-targeted therapy, given that these tumors are driven by a high degree of genomic instability (GI) and homologous recombination (HR) defects. Nonetheless, approximately 30% of patients initially respond to treatment, ultimately relapsing with resistant disease. Thus, despite recent advances in drug development and an increased understanding of genetic alterations driving HGSC progression, mortality has not declined, highlighting the need for novel therapies. Using a small-molecule activator of protein phosphatase 2A (PP2A; SMAP-061), we investigated the mechanism by which PP2A stabilization induces apoptosis in patient-derived HGSC cells and xenograft (PDX) models alone or in combination with PARPi. We uncovered that PP2A genes essential for cellular transformation (B56α, B56γ, and PR72) and basal phosphatase activity (PP2A-A and -C) are heterozygously lost in the majority of HGSC. Moreover, loss of these PP2A genes correlates with worse overall patient survival. We show that SMAP-061-induced stabilization of PP2A inhibits the HR output by targeting RAD51, leading to chronic accumulation of DNA damage and ultimately apoptosis. Furthermore, combination of SMAP-061 and PARPi leads to enhanced apoptosis in both HR-proficient and HR-deficient HGSC cells and PDX models. Our studies identify PP2A as a novel regulator of HR and indicate PP2A modulators as a therapeutic therapy for HGSC. In summary, our findings further emphasize the potential of PP2A modulators to overcome PARPi insensitivity, given that targeting RAD51 presents benefits in overcoming PARPi resistance driven by BRCA1/2 mutation reversions.
Insights
Protein phosphatase 2A (PP2A) activators like SMAP-061 induce apoptosis in ovarian cancer by inhibiting DNA repair. Combining PP2A activators with PARP inhibitors offers a promising new therapy for high-grade serous carcinoma.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- High-grade serous carcinoma (HGSC) is the deadliest ovarian cancer subtype.
- PARP inhibitors (PARPi) are standard therapy but resistance develops in many patients.
- Novel therapeutic strategies are needed to improve HGSC patient outcomes.
Purpose of the Study:
- To investigate the mechanism of PP2A stabilization by SMAP-061 in HGSC.
- To evaluate PP2A modulators as a potential therapy for HGSC, alone or with PARPi.
- To identify novel regulators of homologous recombination (HR) in HGSC.
Main Methods:
- Utilized patient-derived HGSC cells and xenograft (PDX) models.
- Administered a small-molecule activator of protein phosphatase 2A (PP2A; SMAP-061).
- Assessed apoptosis, DNA damage, and HR activity, including RAD51 targeting.
Main Results:
- Loss of key PP2A genes (B56α, B56γ, PR72, PP2A-A, PP2A-C) is common in HGSC and correlates with poor survival.
- SMAP-061 stabilizes PP2A, inhibits RAD51, and induces DNA damage and apoptosis.
- Combination therapy of SMAP-061 and PARPi enhanced apoptosis in both HR-proficient and HR-deficient HGSC models.
Conclusions:
- PP2A is a novel regulator of HR in HGSC.
- PP2A modulators represent a potential therapeutic strategy for HGSC.
- Targeting PP2A may overcome resistance to PARPi by inhibiting RAD51.
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