Statements in which the resource exists as a subject.
PredicateObject
rdf:type
lifeskim:mentions
pubmed:issue
5
pubmed:dateCreated
2006-10-11
pubmed:databankReference
pubmed:abstractText
Epigenetic regulation of gene expression is a source of genetic variation, which can mimic recessive mutations by creating transcriptional haploinsufficiency. Germline epimutations and genomic imprinting are typical examples, although their existence can be difficult to reveal. Genomic imprinting can be tissue specific, with biallelic expression in some tissues and monoallelic expression in others or with polymorphic expression in the general population. Mutations in the skeletal-muscle ryanodine-receptor gene (RYR1) are associated with malignant hyperthermia susceptibility and the congenital myopathies central core disease and multiminicore disease. RYR1 has never been thought to be affected by epigenetic regulation. However, during the RYR1-mutation analysis of a cohort of patients with recessive core myopathies, we discovered that 6 (55%) of 11 patients had monoallelic RYR1 transcription in skeletal muscle, despite being heterozygous at the genomic level. In families for which parental DNA was available, segregation studies showed that the nonexpressed allele was maternally inherited. Transcription analysis in patients' fibroblasts and lymphoblastoid cell lines indicated biallelic expression, which suggests tissue-specific silencing. Transcription analysis of normal human fetal tissues showed that RYR1 was monoallelically expressed in skeletal and smooth muscles, brain, and eye in 10% of cases. In contrast, 25 normal adult human skeletal-muscle samples displayed only biallelic expression. Finally, the administration of the DNA methyltransferase inhibitor 5-aza-deoxycytidine to cultured patient skeletal-muscle myoblasts reactivated the transcription of the silenced allele, which suggests hypermethylation as a mechanism for RYR1 silencing. Our data indicate that RYR1 undergoes polymorphic, tissue-specific, and developmentally regulated allele silencing and that this unveils recessive mutations in patients with core myopathies. Furthermore, our data suggest that imprinting is a likely mechanism for this phenomenon and that similar mechanisms could play a role in human phenotypic heterogeneity.
pubmed:commentsCorrections
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pubmed:language
eng
pubmed:journal
pubmed:citationSubset
IM
pubmed:chemical
pubmed:status
MEDLINE
pubmed:month
Nov
pubmed:issn
0002-9297
pubmed:author
pubmed:issnType
Print
pubmed:volume
79
pubmed:owner
NLM
pubmed:authorsComplete
Y
pubmed:pagination
859-68
pubmed:dateRevised
2009-11-18
pubmed:meshHeading
pubmed-meshheading:17033962-Humans, pubmed-meshheading:17033962-Animals, pubmed-meshheading:17033962-Mice, pubmed-meshheading:17033962-Fetus, pubmed-meshheading:17033962-Hydroxamic Acids, pubmed-meshheading:17033962-Female, pubmed-meshheading:17033962-Male, pubmed-meshheading:17033962-Genes, Recessive, pubmed-meshheading:17033962-Muscle, Skeletal, pubmed-meshheading:17033962-Base Sequence, pubmed-meshheading:17033962-Cells, Cultured, pubmed-meshheading:17033962-Pedigree, pubmed-meshheading:17033962-Tissue Distribution, pubmed-meshheading:17033962-Case-Control Studies, pubmed-meshheading:17033962-Alleles, pubmed-meshheading:17033962-Mice, Inbred C57BL, pubmed-meshheading:17033962-Azacitidine, pubmed-meshheading:17033962-DNA Methylation, pubmed-meshheading:17033962-Myopathy, Central Core, pubmed-meshheading:17033962-DNA Primers
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