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Published on: January 12, 2020
A targetable MYBL2-ATAD2 axis governs cell proliferation in ovarian cancer
Qun Liu1,2, Heshu Liu3, Xuying Huang3
1Department of Gynecologic Oncology, Beijing Obstetrics and Gynecology Hospital, Capital Medical University. Beijing Maternal and Child Health Care Hospital, 100006, Beijing, China.
Abstract:
The chromatin-modifying enzyme ATAD2 confers oncogenic competence and proliferative advantage in malignances. We previously identified ATAD2 as a marker and driver of cell proliferation in ovarian cancer (OC); however, the mechanisms whereby ATAD2 is regulated and involved in cell proliferation are still unclear. Here, we disclose that ATAD2 displays a classical G2/M gene signature, functioning to facilitate mitotic progression. ATAD2 ablation caused mitotic arrest and decreased the ability of OC cells to pass through nocodazole-arrested mitosis. ChIP-seq data analyses demonstrated that DREAM and MYBL2-MuvB (MMB), two switchable MuvB-based complexes, bind the CHR elements in the ATAD2 promoter, representing a typical feature and principle mechanism of the periodic regulation of G2/M genes. As a downstream target of MYBL2, ATAD2 deletion significantly impaired MYBL2-driven cell proliferation. Intriguingly, ATAD2 silencing also fed back to destabilize the MYBL2 protein. The significant coexpression of MYBL2 and ATAD2 at both the bulk tissue and single-cell levels highlights the existence of the MYBL2-ATAD2 signaling in OC patients. This signaling is activated during tumorigenesis and correlated with TP53 mutation, and its hyperactivation was found especially in high-grade serous and drug-resistant OCs. Disrupting this signaling by CRISPR/Cas9-mediated ATAD2 ablation inhibited the in vivo growth of OC in a subcutaneous tumor xenograft mouse model, while pharmacologically targeting this signaling with an ATAD2 inhibitor demonstrated high therapeutic efficacy in both drug-sensitive and drug-resistant OC cells. Collectively, we identified a novel MYBL2-ATAD2 proliferative signaling axis and highlighted its potential application in developing new therapeutic strategies, especially for high-grade serous and drug-resistant OCs.
Insights
Researchers discovered a new MYBL2-ATAD2 signaling pathway driving ovarian cancer (OC) cell proliferation. Targeting this axis with ATAD2 inhibitors shows promise for treating drug-resistant and high-grade serous OC.
Area of Science:
- Molecular Biology
- Oncology
- Cell Cycle Regulation
Background:
- ATAD2 is a chromatin modifier linked to cancer cell proliferation.
- Its regulatory mechanisms and role in ovarian cancer (OC) cell proliferation remain unclear.
- ATAD2 exhibits a G2/M gene signature, suggesting involvement in mitotic progression.
Purpose of the Study:
- To elucidate the regulatory mechanisms of ATAD2 in OC cell proliferation.
- To investigate the functional role of ATAD2 in mitosis and its connection to MYBL2.
- To evaluate the therapeutic potential of targeting the MYBL2-ATAD2 axis in OC.
Main Methods:
- CRISPR/Cas9-mediated ATAD2 ablation.
- Chromatin immunoprecipitation sequencing (ChIP-seq) to analyze promoter binding.
- Cell proliferation assays and mitotic progression studies.
- In vivo tumor xenograft mouse models.
- Pharmacological inhibition of ATAD2.
Main Results:
- ATAD2 ablation caused mitotic arrest and impaired progression through mitosis.
- DREAM and MYBL2-MuvB (MMB) complexes bind the ATAD2 promoter, regulating its G2/M expression.
- ATAD2 is a downstream target of MYBL2, and its silencing destabilizes MYBL2 protein.
- Coexpression of MYBL2 and ATAD2 is significant in OC, correlating with TP53 mutation and hyperactivation in high-grade serous and drug-resistant subtypes.
- ATAD2 inhibition demonstrated therapeutic efficacy in both drug-sensitive and resistant OC cells.
Conclusions:
- A novel MYBL2-ATAD2 proliferative signaling axis was identified in ovarian cancer.
- This signaling pathway is crucial for mitotic progression and OC cell proliferation.
- Targeting ATAD2 offers a potential therapeutic strategy for high-grade serous and drug-resistant ovarian cancers.
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