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Updated: Jul 22, 2025

Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
ATAD2 is a driver and a therapeutic target in ovarian cancer that functions by upregulating CENPE
Praveen Guruvaiah1, Suresh Chava1, Chiao-Wang Sun1
1Department of Biochemistry and Molecular Genetics, The University of Alabama at Birmingham, Birmingham, AL, 35233, USA.
Abstract:
Ovarian cancer is a complex disease associated with multiple genetic and epigenetic alterations. The emergence of treatment resistance in most patients causes ovarian cancer to become incurable, and novel therapies remain necessary. We identified epigenetic regulator ATPase family AAA domain-containing 2 (ATAD2) is overexpressed in ovarian cancer and is associated with increased incidences of metastasis and recurrence. Genetic knockdown of ATAD2 or its pharmacological inhibition via ATAD2 inhibitor BAY-850 suppressed ovarian cancer growth and metastasis in both in vitro and in vivo models. Transcriptome-wide mRNA expression profiling of ovarian cancer cells treated with BAY-850 revealed that ATAD2 inhibition predominantly alters the expression of centromere regulatory genes, particularly centromere protein E (CENPE). In ovarian cancer cells, changes in CENPE expression following ATAD2 inhibition resulted in cell-cycle arrest and apoptosis induction, which led to the suppression of ovarian cancer growth. Pharmacological CENPE inhibition phenotypically recapitulated the cellular changes induced by ATAD2 inhibition, and combined pharmacological inhibition of both ATAD2 and CENPE inhibited ovarian cancer cell growth more potently than inhibition of either alone. Thus, our study identified ATAD2 as regulators of ovarian cancer growth and metastasis that can be targeted either alone or in combination with CENPE inhibitors for effective ovarian cancer therapy.
Insights
This study reveals ATPase family AAA domain-containing 2 (ATAD2) drives ovarian cancer growth and metastasis. Inhibiting ATAD2, alone or with CENPE inhibitors, offers a promising new ovarian cancer therapy.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Ovarian cancer is a complex disease with poor prognosis due to treatment resistance.
- Genetic and epigenetic alterations drive ovarian cancer progression, necessitating novel therapeutic targets.
Purpose of the Study:
- To investigate the role of epigenetic regulator ATPase family AAA domain-containing 2 (ATAD2) in ovarian cancer.
- To evaluate ATAD2 as a therapeutic target for ovarian cancer treatment.
Main Methods:
- Assessed ATAD2 overexpression in ovarian cancer tissues.
- Utilized genetic knockdown and pharmacological inhibition (BAY-850) of ATAD2 in vitro and in vivo.
- Performed transcriptome-wide mRNA expression profiling.
- Investigated the role of centromere protein E (CENPE) in ATAD2-mediated effects.
Main Results:
- ATAD2 is overexpressed in ovarian cancer, correlating with metastasis and recurrence.
- ATAD2 inhibition suppressed ovarian cancer growth and metastasis.
- ATAD2 inhibition altered centromere regulatory gene expression, notably CENPE.
- Inhibition of ATAD2 led to cell-cycle arrest and apoptosis via CENPE modulation.
- Combined ATAD2 and CENPE inhibition showed enhanced efficacy in suppressing ovarian cancer cell growth.
Conclusions:
- ATAD2 is a key regulator of ovarian cancer growth and metastasis.
- Targeting ATAD2, alone or in combination with CENPE inhibitors, represents a potential therapeutic strategy for ovarian cancer.
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