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Metabolic Regulation of the Epigenome Drives Lethal Infantile Ependymoma
- Publication Year :
- 2020
-
Abstract
- Posterior fossa A (PFA) ependymomas are lethal malignancies of the hindbrain in infants and toddlers. Lacking highly recurrent somatic mutations, PFA ependymomas are proposed to be epigenetically driven tumors for which model systems are lacking. Here we demonstrate that PFA ependymomas are maintained under hypoxia, associated with restricted availability of specific metabolites to diminish histone methylation, and increase histone demethylation and acetylation at histone 3 lysine 27 (H3K27). PFA ependymomas initiate from a cell lineage in the first trimester of human development that resides in restricted oxygen. Unlike other ependymomas, transient exposure of PFA cells to ambient oxygen induces irreversible cellular toxicity. PFA tumors exhibit a low basal level of H3K27me3, and, paradoxically, inhibition of H3K27 methylation specifically disrupts PFA tumor growth. Targeting metabolism and/or the epigenome presents a unique opportunity for rational therapy for infants with PFA ependymoma. Hypoxia reprograms the cellular metabolome and epigenome to promote growth of the most lethal ependymomas.
- Subjects :
- Epigenomics
Ependymoma
Male
ependymoma
Epigenomic
Somatic cell
cancer metabolism
Infratentorial Neoplasms
Biology
General Biochemistry, Genetics and Molecular Biology
Cell Line
Histones
Brain Neoplasm
03 medical and health sciences
Epigenome
0302 clinical medicine
Histone demethylation
Histone methylation
medicine
Animals
Humans
Epigenetics
030304 developmental biology
hindbrain development
Cell Proliferation
Infratentorial Neoplasm
0303 health sciences
Brain Neoplasms
Animal
Lysine
Infant
DNA Methylation
medicine.disease
microenvironment
Mice, Inbred C57BL
Histone
Acetylation
paediatric cancer
Mutation
biology.protein
Cancer research
030217 neurology & neurosurgery
epigenetic
Human
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....8a4cbadadef8c1b79cfc6c9ec6f333d8