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Transposon Mediated Integration of Plasmid DNA into the Subventricular Zone of Neonatal Mice to Generate Novel Models of Glioblastoma
Published on: February 22, 2015
Shared epigenetic mechanisms in human and mouse gliomas inactivate expression of the growth suppressor SLC5A8
Chibo Hong1, Alika Maunakea, Peter Jun
1Department of Neurological Surgery, Brain Tumor Research Center, University of California-San Francisco, San Francisco, California 94143-0875, USA.
Abstract:
Tumors arise in part from the deleterious effects of genetic and epigenetic mechanisms on gene expression. In several mouse models of human tumors, the tumorigenic phenotype is reversible, suggesting that epigenetic mechanisms also contribute significantly to tumorigenesis in mice. It is not known whether these are the same epigenetic mechanisms in human and mouse tumors or whether they affect homologous genes. Using an integrated approach for genome-wide methylation and copy number analyses, we identified SLC5A8 on chromosome 12q23.1 that was affected frequently by aberrant methylation in human astrocytomas and oligodendrogliomas. SLC5A8 encodes a sodium monocarboxylate cotransporter that was highly expressed in normal brain but was significant down-regulated in primary gliomas. Bisulfite sequencing analysis showed that the CpG island was unmethylated in normal brain but frequently localized methylated in brain tumors, consistent with the tumor-specific loss of gene expression. In glioma cell lines, SLC5A8 expression was also suppressed but could be reactivated with a methylation inhibitor. Expression of exogenous SLC5A8 in LN229 and LN443 glioma cells inhibited colony formation, suggesting that it may function as a growth suppressor in normal brain cells. Remarkably, 9 of 10 murine oligodendroglial tumors (from p53+/- or ink4a/arf+/- animals transgenic for S100beta-v-erbB) showed a similar tumor-specific down-regulation of mSLC5A8, the highly conserved mouse homologue. Taken together, these data suggest that SLC5A8 functions as a growth suppressor gene in vitro and that it is silenced frequently by epigenetic mechanisms in primary gliomas. The shared epigenetic inactivation of mSLC5A8 in mouse gliomas indicates an additional degree of commonality in the origin and/or pathway to tumorigenesis between primary human tumors and these mouse models of gliomas.
Insights
Aberrant methylation silences the SLC5A8 gene, a growth suppressor, in human gliomas and mouse models. This epigenetic silencing is a shared mechanism in tumorigenesis, highlighting SLC5A8
Area of Science:
- Oncology
- Epigenetics
- Neuroscience
Background:
- Tumors develop due to genetic and epigenetic alterations affecting gene expression.
- Reversible tumorigenic phenotypes in mouse models suggest significant epigenetic contributions to cancer.
- The conservation of epigenetic mechanisms and affected genes between human and mouse tumors is largely unknown.
Purpose of the Study:
- To investigate conserved epigenetic mechanisms in human and mouse gliomas.
- To identify genes silenced by aberrant methylation in human brain tumors.
- To explore the role of SLC5A8 as a potential tumor suppressor gene.
Main Methods:
- Genome-wide methylation and copy number analyses.
- Bisulfite sequencing to analyze CpG island methylation.
- SLC5A8 expression analysis in glioma cell lines and murine tumors.
- Functional assays involving exogenous SLC5A8 expression in glioma cells.
Main Results:
- SLC5A8, a sodium monocarboxylate cotransporter, was frequently hypermethylated and downregulated in human astrocytomas and oligodendrogliomas.
- SLC5A8 promoter CpG islands were unmethylated in normal brain but methylated in gliomas, correlating with gene silencing.
- Methylation inhibitor reactivated SLC5A8 expression in glioma cells, and its exogenous expression inhibited colony formation.
- The mouse homologue, mSLC5A8, exhibited similar tumor-specific downregulation in murine oligodendroglial tumors.
Conclusions:
- SLC5A8 functions as a growth suppressor gene, frequently silenced by epigenetic mechanisms in primary gliomas.
- Shared epigenetic inactivation of mSLC5A8 in mouse gliomas indicates conserved tumorigenesis pathways between human and mouse models.
- These findings highlight SLC5A8 as a potential therapeutic target in glioma treatment.
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