4.5 Article

Epigenetic remodelling and dysregulation of DLGAP4 is linked with early-onset cerebellar ataxia

期刊

HUMAN MOLECULAR GENETICS
卷 23, 期 23, 页码 6163-6176

出版社

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddu337

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资金

  1. Lundbeck Foundation
  2. Danish National Research Foundation
  3. Danish National Research Council
  4. Danish Ministry of Science, Technology and Innovation
  5. National Genome Research Network (NGFN)
  6. Marie Curie RTN 'Chromatin Plasticity' (EU FP6) grant [MRTN - CT-2006-035733]
  7. University of Copenhagen, Denmark
  8. Lundbeck Foundation [R151-2013-14290, R67-2010-6431, R13-2007-1172, R108-2012-10956] Funding Source: researchfish
  9. Novo Nordisk Fonden [NNF11OC1014514] Funding Source: researchfish

向作者/读者索取更多资源

Genome instability, epigenetic remodelling and structural chromosomal rearrangements are hallmarks of cancer. However, the coordinated epigenetic effects of constitutional chromosomal rearrangements that disrupt genes associated with congenital neurodevelopmental diseases are poorly understood. To understand the genetic-epigenetic interplay at breakpoints of chromosomal translocations disrupting CG-rich loci, we quantified epigenetic modifications at DLGAP4 (SAPAP4), a key post-synaptic density 95 (PSD95) associated gene, truncated by the chromosome translocation t(8;20)(p12;q11.23), co-segregating with cerebellar ataxia in a five-generation family. We report significant epigenetic remodelling of the DLGAP4 locus triggered by the t(8;20)(p12;q11.23) translocation and leading to dysregulation of DLGAP4 expression in affected carriers. Disruption of DLGAP4 results in monoallelic hypermethylation of the truncated DLGAP4 promoter CpG island. This induced hypermethylation is maintained in somatic cells of carriers across several generations in a t(8;20) dependent-manner however, is erased in the germ cells of the translocation carriers. Subsequently, chromatin remodelling of the locus-perturbed monoallelic expression of DLGAP4 mRNAs and non-coding RNAs in haploid cells having the translocation. Our results provide new mechanistic insight into the way a balanced chromosomal rearrangement associated with a neurodevelopmental disorder perturbs allele-specific epigenetic mechanisms at breakpoints leading to the deregulation of the truncated locus.

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