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Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
Dependence of PAX3-FOXO1 chromatin occupancy on ETS1 at important disease-promoting genes exposes new targetable
Joseph Hsieh1,2,3, Etienne P Danis4,5, Charles R Owens3
1Medical Scientist Training Program, University of Colorado Anschutz Medical Campus (UC-AMC), Aurora, CO, USA.
Abstract:
Rhabdomyosarcoma (RMS), a malignancy of impaired myogenic differentiation, is the most common soft tissue pediatric cancer. PAX3-FOXO1 oncofusions drive the majority of the clinically more aggressive fusion-positive rhabdomyosarcoma (FP-RMS). Recent studies have established an epigenetic basis for PAX3-FOXO1-driven oncogenic processes. However, details of PAX3-FOXO1 epigenetic mechanisms, including interactions with, and dependence on, other chromatin and transcription factors, are incompletely understood. We previously identified a novel disease-promoting epigenetic axis in RMS, involving the histone demethylase KDM3A and the ETS1 transcription factor, and demonstrated that this epigenetic axis interfaces with PAX3-FOXO1 both phenotypically and transcriptomically, including co-regulation of biological processes and genes important to FP-RMS progression. In this study, we demonstrate that KDM3A and ETS1 colocalize with PAX3-FOXO1 to enhancers of important disease-promoting genes in FP-RMS, including FGF8, IL4R, and MEST, as well as PODXL, which we define herein as a new FP-RMS-promoting gene. We show that ETS1, which is induced by both PAX3-FOXO1 and KDM3A, exists in complex with PAX3-FOXO1, and augments PAX3-FOXO1 chromatin occupancy. We further show that the PAX3-FOXO1/ETS1 complex can be disrupted by the clinically relevant small molecule inhibitor YK-4-279. YK-4-279 displaces PAX3-FOXO1 from chromatin and interferes with PAX3-FOXO1-dependent gene regulation, resulting in potent inhibition of growth and invasive properties in FP-RMS, along with downregulation of FGF8, IL4R, MEST and PODXL expression. We additionally show that, in some FP-RMS, KDM3A also increases PAX3-FOXO1 levels. Together, our studies illuminate mechanisms of action of the KDM3A/ETS1 regulatory module, and reveal novel targetable mechanisms of PAX3-FOXO1 chromatin complex regulation, in FP-RMS.
Insights
Researchers identified a new therapeutic target for fusion-positive rhabdomyosarcoma (FP-RMS). The KDM3A/ETS1 complex interacts with PAX3-FOXO1, and inhibiting this interaction with YK-4-279 reduces tumor growth and spread.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Rhabdomyosarcoma (RMS) is a common pediatric soft tissue cancer driven by PAX3-FOXO1 oncofusions in aggressive forms (FP-RMS).
- Epigenetic dysregulation is key to PAX3-FOXO1 oncogenesis, but its precise mechanisms and interactions remain unclear.
- A previously identified axis involving KDM3A and ETS1 was shown to interact with PAX3-FOXO1 in FP-RMS.
Purpose of the Study:
- To elucidate the epigenetic mechanisms by which KDM3A and ETS1 contribute to FP-RMS progression.
- To investigate the interaction between the KDM3A/ETS1 axis and PAX3-FOXO1 at the chromatin level.
- To evaluate the therapeutic potential of targeting the PAX3-FOXO1/ETS1 complex.
Main Methods:
- Chromatin immunoprecipitation (ChIP) assays to assess protein colocalization and occupancy.
- Co-immunoprecipitation (Co-IP) to confirm protein complex formation.
- Quantitative real-time PCR (qRT-PCR) to measure gene expression.
- Cell proliferation and invasion assays to evaluate functional impact.
- Treatment with the small molecule inhibitor YK-4-279.
Main Results:
- KDM3A and ETS1 colocalize with PAX3-FOXO1 at enhancers of key FP-RMS genes (FGF8, IL4R, MEST, PODXL).
- ETS1, induced by PAX3-FOXO1 and KDM3A, forms a complex with PAX3-FOXO1, enhancing its chromatin binding.
- The inhibitor YK-4-279 disrupts the PAX3-FOXO1/ETS1 complex, leading to PAX3-FOXO1 displacement from chromatin and downregulation of target genes.
- YK-4-279 treatment potently inhibits FP-RMS growth and invasion.
- KDM3A was also found to increase PAX3-FOXO1 levels in some FP-RMS cases.
Conclusions:
- The KDM3A/ETS1 regulatory module is integral to FP-RMS pathogenesis by modulating PAX3-FOXO1 activity.
- The PAX3-FOXO1/ETS1 complex represents a novel, targetable mechanism in FP-RMS.
- Inhibition of this complex with YK-4-279 shows significant therapeutic promise for FP-RMS treatment.
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