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Epigenetic dysregulation: a novel pathway of oncogenesis in pediatric brain tumors
Adam M Fontebasso1, Tenzin Gayden, Hamid Nikbakht
1Division of Experimental Medicine, Montreal Children's Hospital, McGill University and McGill University Health Centre, 4060 Ste Catherine West, PT239, Montreal, QC, H3Z 2Z3, Canada.
Abstract:
A remarkably large number of "epigenetic regulators" have been recently identified to be altered in cancers and a rapidly expanding body of literature points to "epigenetic addiction" (an aberrant epigenetic state to which a tumor is addicted) as a new previously unsuspected mechanism of oncogenesis. Although mutations are also found in canonical signaling pathway genes, we and others identified chromatin-associated proteins to be more commonly altered by somatic alterations than any other class of oncoprotein in several subgroups of childhood high-grade brain tumors. Furthermore, as these childhood malignancies carry fewer non-synonymous somatic mutations per case in contrast to most adult cancers, these mutations are likely drivers in these tumors. Herein, we will use as examples of this novel hallmark of oncogenesis high-grade astrocytomas, including glioblastoma, and a subgroup of embryonal tumors, embryonal tumor with multilayered rosettes (ETMR) to describe the novel molecular defects uncovered in these deadly tumors. We will further discuss evidence for their profound effects on the epigenome. The relative genetic simplicity of these tumors promises general insights into how mutations in the chromatin machinery modify downstream epigenetic signatures to drive transformation, and how to target this plastic genetic/epigenetic interface.
Insights
Cancer cells can become addicted to faulty epigenetic regulators, driving tumor growth. Targeting these epigenetic defects offers a new therapeutic strategy for aggressive childhood brain tumors.
Area of Science:
- Oncology
- Epigenetics
- Genetics
Background:
- Epigenetic regulators are frequently altered in cancers.
- Epigenetic addiction is an emerging mechanism of oncogenesis.
- Chromatin-associated proteins are commonly altered in childhood brain tumors.
Purpose of the Study:
- To describe novel molecular defects in high-grade astrocytomas and ETMR.
- To discuss the effects of these defects on the epigenome.
- To explore targeting the genetic/epigenetic interface in these cancers.
Main Methods:
- Analysis of somatic alterations in chromatin-associated proteins.
- Examination of epigenetic modifications in tumor samples.
- Case studies of high-grade astrocytomas and ETMR.
Main Results:
- Chromatin-associated proteins are more frequently altered than signaling pathway genes in pediatric brain tumors.
- These tumors exhibit fewer mutations than adult cancers, suggesting driver roles for identified mutations.
- Novel molecular defects impacting the epigenome were uncovered in high-grade astrocytomas and ETMR.
Conclusions:
- Mutations in chromatin machinery drive cancer transformation by altering epigenetic signatures.
- Epigenetic addiction is a key mechanism in certain pediatric brain tumors.
- Targeting the interplay between genetics and epigenetics is a promising therapeutic avenue.
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