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Optimized Analysis of DNA Methylation and Gene Expression from Small, Anatomically-defined Areas of the Brain
Published on: July 12, 2012
Disruption of the epigenetic code: an emerging mechanism in mental retardation
Hans van Bokhoven1, Jamie M Kramer
1Department of Human Genetics, Nijmegen Centre for Molecular Life Sciences, Radboud University Nijmegen Medical Centre, Nijmegen, The Netherlands. H.vanbokhoven@antrg.umcn.nl
Abstract:
Mental retardation (MR) is a highly diverse group of cognitive disorders. Gene defects account for about half of all patients and mutations causative for impaired cognition have been identified in more than 400 genes. While there are numerous genetic defects underlying MR, a more limited number of pathways is emerging whose disruption appears to be shared by groups of MR genes. One of these common pathways is composed of MR genes that encode regulators of chromatin structure and of chromatin-mediated transcription regulation. Already more than 20 "epigenetic MR genes" have been identified and this number is likely to increase in the coming years when deep sequencing of exomes and genomes will become commonplace. Prominent examples of epigenetic MR genes include the methyl CpG-binding protein MECP2 and the CREB binding protein, CBP. Interestingly, several epigenetic MR proteins have been found to interact directly with one another or act together in complexes that regulate the local chromatin structure at target genes. Thus, it appears that the functions of individual epigenetic MR proteins converge onto similar biological processes that are crucial to neuronal processes. The next challenge will be to gain more insight into patterns of altered DNA methylation and histone modifications that are caused by epigenetic gene mutations and how these will disrupt the brain-specific expression of target genes. Such research may reveal that a wide variety of mutations in the genetic code result in a more limited number of disruptions to the epigenetic code. If so, this will provide a rationale for therapeutic strategies.
Insights
Genetic defects in over 400 genes cause cognitive disorders, with many linked to chromatin regulators. Understanding these epigenetic factors offers potential therapeutic strategies for mental retardation (MR).
Area of Science:
- Genetics
- Neuroscience
- Epigenetics
Background:
- Mental retardation (MR) is a diverse cognitive disorder with genetic causes in about half of patients.
- Over 400 genes are implicated, but a smaller set of disrupted pathways is emerging.
- A key pathway involves genes regulating chromatin structure and transcription.
Purpose of the Study:
- To highlight the role of epigenetic genes in mental retardation.
- To emphasize the convergence of epigenetic gene functions on neuronal processes.
- To identify challenges and potential therapeutic avenues.
Main Methods:
- Review of identified "epigenetic MR genes" (over 20 identified).
- Analysis of protein interactions among epigenetic MR proteins.
- Focus on understanding DNA methylation and histone modification patterns.
Main Results:
- Over 20 "epigenetic MR genes" identified, regulating chromatin structure.
- Epigenetic MR proteins interact and form complexes affecting chromatin.
- These proteins converge on biological processes crucial for neuronal function.
Conclusions:
- A limited number of disrupted epigenetic pathways may underlie diverse genetic mutations causing MR.
- Further research into DNA methylation and histone modifications is crucial.
- Understanding these disruptions could lead to novel therapeutic strategies for MR.
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