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RNA sequencing-based screen for reactivation of silenced alleles of autosomal genes
Author(s) -
Saumya Gupta,
Denis L. J. Lafontaine,
Sébastien Vigneau,
Asia Mendelevich,
S.V. Vinogradova,
Kyomi J. Igarashi,
Andrew N. Bortvin,
Clara Pereira,
Anwesha Nag,
Alexander A. Gimelbrant
Publication year - 2021
Publication title -
g3 genes genomes genetics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.468
H-Index - 66
ISSN - 2160-1836
DOI - 10.1093/g3journal/jkab428
Subject(s) - biology , allele , genetics , genomic imprinting , dna methylation , gene , x inactivation , epigenetics , dna demethylation , gene expression , x chromosome
In mammalian cells, maternal and paternal alleles usually have similar transcriptional activity. Epigenetic mechanisms such as X-chromosome inactivation (XCI) and imprinting were historically viewed as rare exceptions to this rule. Discovery of autosomal monoallelic autosomal expression (MAE) a decade ago revealed an additional allele-specific mode regulating thousands of mammalian genes. Despite MAE prevalence, its mechanistic basis remains unknown. Using an RNA sequencing-based screen for reactivation of silenced alleles, we identified DNA methylation as key mechanism of MAE mitotic maintenance. In contrast with the all-or-nothing allelic choice in XCI, allele-specific expression in MAE loci is tunable, with exact allelic imbalance dependent on the extent of DNA methylation. In a subset of MAE genes, allelic imbalance was insensitive to DNA demethylation, implicating additional mechanisms in MAE maintenance in these loci. Our findings identify a key mechanism of MAE maintenance and provide basis for understanding the biological role of MAE.

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