Transcriptional alterations in glioma result primarily from DNA methylation-independent mechanisms

Franck Court1, Elisa Le Boiteux1, Anne Fogli1,2

  • 1Laboratoire Génétique Reproduction et Développement (GReD), Université Clermont Auvergne, CNRS, INSERM, BP 38, Clermont-Ferrand 63001, France.

Genome Research
|September 20, 2019
PubMed

Insights

In glioma, most gene expression changes are not caused by DNA methylation but by altered histone H3 trimethylation at lysine 27 (H3K27me3). This suggests new therapeutic targets for brain tumors.

Area of Science:

  • Epigenetics
  • Cancer Biology
  • Neuro-oncology

Background:

  • Aberrant DNA methylation is a hallmark of cancer, often silencing tumor suppressor genes.
  • Epigenetic mechanisms, including polycomb repressive marks, also drive gene deregulation in cancer.
  • Understanding the interplay of these mechanisms is crucial for cancer treatment.

Purpose of the Study:

  • To differentiate DNA methylation-dependent and -independent transcriptional alterations in adult glioma.
  • To identify the primary epigenetic drivers of gene deregulation in brain tumors.
  • To explore the role of chromatin signatures and gene expression levels in epigenetic regulation.

Main Methods:

  • Analysis of 70 adult glioma samples, stratified by isocitrate dehydrogenase (IDH1) mutation status.
  • Investigated transcriptional alterations and epigenetic modifications, focusing on DNA methylation and histone H3 trimethylation at lysine 27 (H3K27me3).
  • Compared epigenetic defects in tumor samples with gene expression patterns in healthy brain cells.

Main Results:

  • Most transcriptional alterations in glioma were DNA methylation-independent.
  • Altered H3K27me3 was the predominant epigenetic defect in deregulated genes.
  • Bivalent chromatin signatures in stem cells predispose to broader transcriptional alterations in cancer.
  • Highly expressed genes in healthy brain cells were more prone to H3K27me3-mediated repression in glioma.

Conclusions:

  • Altered H3K27me3 dynamics, particularly involving polycomb complexes and brain-specific transcription factors, are the main drivers of transcriptional changes in glioma.
  • This study offers a comprehensive analysis of epigenetic changes in glioma and their impact on gene expression.
  • Findings may inform the development of novel epigenetic therapies for brain tumors.

Related Concept Videos

Epigenetic Regulation01:37

Epigenetic Regulation

Epigenetic changes alter the physical structure of the DNA without changing the genetic sequence and often regulate whether genes are turned on or off. This regulation ensures that each cell produces only proteins necessary for its function. For example, proteins that promote bone growth are not produced in muscle cells. Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
X-chromosome...
3.7K
Epigenetic Regulation01:46

Epigenetic Regulation

Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
33.5K
Genomic Imprinting and Inheritance02:30

Genomic Imprinting and Inheritance

Diploid organisms inherit genetic material through chromosomes from both parents. Copies of the same gene are known as alleles. In most cases, both alleles are simultaneously expressed and allow various cellular processes to function optimally. If one of the alleles is missing or mutated, the expression of the other allele can compensate; however, this is not true for all genes.
The expression of some genes depends on which parent passed the gene to the offspring, through a phenomenon known as...
36.8K
Chromatin Modification in iPS Cells01:32

Chromatin Modification in iPS Cells

Chromatin modification alters gene expression; therefore, scientists can add histone-modifying enzymes, histone variants, and chromatin remodeling complexes to somatic cells to aid reprogramming into pluripotent stem (iPS) cells.
Compact chromatin makes reprogramming difficult. Enzymes, such as histone demethylases and acetyltransferases, are often added during reprogramming to loosen the chromatin, making the DNA more accessible to transcription factors. Molecules that inhibit histone...
2.1K
Abnormal Proliferation02:23

Abnormal Proliferation

Under normal conditions, most adult cells remain in a non-proliferative state unless stimulated by internal or external factors to replace lost cells. Abnormal cell proliferation is a condition in which the cell's growth exceeds and is uncoordinated with normal cells. In such situations, cell division persists in the same excessive manner even after cessation of the stimuli, leading to persistent tumors. The tumor arises from the damaged cells that replicate to pass the damage to the...
5.1K
Phase II Reactions: Methylation Reactions01:17

Phase II Reactions: Methylation Reactions

Methylation is a phase II biotransformation process involving the attachment of a methyl group to a substrate. Enzymes known as methyltransferases orchestrate this reaction.
The mechanism of methylation unfolds in two stages. The first stage sees a methyltransferase enzyme facilitating the transfer of a methyl group from S-adenosylmethionine (SAM) to the substrate, forming S-adenosylhomocysteine (SAH). The second stage involves further metabolism of SAH into homocysteine, which can be recycled...
684