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Published on: July 25, 2020
Therapeutic targeting of ependymoma as informed by oncogenic enhancer profiling
Stephen C Mack1,2,3,4, Kristian W Pajtler5,6,7, Lukas Chavez5,6,8
1Department of Pediatrics, Baylor College of Medicine, Houston, Texas, USA.
Abstract:
Genomic sequencing has driven precision-based oncology therapy; however, the genetic drivers of many malignancies remain unknown or non-targetable, so alternative approaches to the identification of therapeutic leads are necessary. Ependymomas are chemotherapy-resistant brain tumours, which, despite genomic sequencing, lack effective molecular targets. Intracranial ependymomas are segregated on the basis of anatomical location (supratentorial region or posterior fossa) and further divided into distinct molecular subgroups that reflect differences in the age of onset, gender predominance and response to therapy. The most common and aggressive subgroup, posterior fossa ependymoma group A (PF-EPN-A), occurs in young children and appears to lack recurrent somatic mutations. Conversely, posterior fossa ependymoma group B (PF-EPN-B) tumours display frequent large-scale copy number gains and losses but have favourable clinical outcomes. More than 70% of supratentorial ependymomas are defined by highly recurrent gene fusions in the NF-κB subunit gene RELA (ST-EPN-RELA), and a smaller number involve fusion of the gene encoding the transcriptional activator YAP1 (ST-EPN-YAP1). Subependymomas, a distinct histologic variant, can also be found within the supratetorial and posterior fossa compartments, and account for the majority of tumours in the molecular subgroups ST-EPN-SE and PF-EPN-SE. Here we describe mapping of active chromatin landscapes in 42 primary ependymomas in two non-overlapping primary ependymoma cohorts, with the goal of identifying essential super-enhancer-associated genes on which tumour cells depend. Enhancer regions revealed putative oncogenes, molecular targets and pathways; inhibition of these targets with small molecule inhibitors or short hairpin RNA diminished the proliferation of patient-derived neurospheres and increased survival in mouse models of ependymomas. Through profiling of transcriptional enhancers, our study provides a framework for target and drug discovery in other cancers that lack known genetic drivers and are therefore difficult to treat.
Insights
Identifying new therapeutic targets for ependymomas, a type of brain tumor, is crucial. This study maps active chromatin landscapes to find essential genes, revealing potential drug targets that reduce tumor growth and improve survival in mouse models.
Area of Science:
- Neuro-oncology
- Cancer Genomics
- Epigenetics
Background:
- Ependymomas are challenging brain tumors lacking effective molecular targets, necessitating novel therapeutic strategies.
- Genomic sequencing has advanced precision oncology, but many malignancies, including ependymomas, still have unknown or non-targetable genetic drivers.
- Ependymomas are classified into molecular subgroups based on location and genetic alterations, influencing patient outcomes and treatment responses.
Purpose of the Study:
- To identify essential super-enhancer-associated genes driving ependymoma tumor cell dependence.
- To discover novel molecular targets and pathways for therapeutic intervention in ependymomas.
- To establish a framework for target and drug discovery in cancers with limited known genetic drivers.
Main Methods:
- Mapping active chromatin landscapes in 42 primary ependymomas across two distinct cohorts.
- Profiling transcriptional enhancers to identify putative oncogenes and critical pathways.
- Utilizing patient-derived neurospheres and mouse models to test therapeutic interventions.
Main Results:
- Active chromatin profiling revealed key super-enhancer-associated genes crucial for ependymoma cell survival.
- Inhibition of identified targets using small molecule inhibitors or short hairpin RNA significantly reduced tumor cell proliferation.
- Targeted inhibition led to increased survival rates in preclinical mouse models of ependymoma.
Conclusions:
- Profiling transcriptional enhancers is a viable strategy for discovering therapeutic targets in challenging cancers like ependymoma.
- The identified targets and pathways offer promising avenues for developing new treatments for ependymomas and other hard-to-treat malignancies.
- This research provides a foundation for future drug discovery efforts in oncology, particularly for tumors lacking well-defined genetic drivers.
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