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.

Cancer Research
|May 4, 2005
PubMed

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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