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Genomic Analysis of Parent-of-origin Allelic Expression in Arabidopsis Thaliana Seeds

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Journal PLoS One
Date 2011 Aug 23
PMID 21858209
Citations 108
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Abstract

Differential expression of maternally and paternally inherited alleles of a gene is referred to as gene imprinting, a form of epigenetic gene regulation common to flowering plants and mammals. In plants, imprinting primarily occurs in the endosperm, a seed tissue that supports the embryo during its growth and development. Previously, we demonstrated that widespread DNA demethylation at remnants of transposable elements accompanies endosperm development and that a subset of these methylation changes are associated with gene imprinting. Here we assay imprinted gene expression genome-wide by performing high-throughput sequencing of RNA derived from seeds of reciprocal intraspecific crosses. We identify more than 200 loci that exhibit parent-of-origin effects on gene expression in the endosperm, including a large number of transcription factors, hormone biosynthesis and response genes, and genes that encode regulators of epigenetic information, such as methylcytosine binding proteins, histone methyltransferases, and chromatin remodelers. The majority of these genes are partially, rather than completely, imprinted, suggesting that gene dosage regulation is an important aspect of imprinted gene expression.

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References
1.
Feil R, Berger F . Convergent evolution of genomic imprinting in plants and mammals. Trends Genet. 2007; 23(4):192-9. DOI: 10.1016/j.tig.2007.02.004. View

2.
Kohler C, Page D, Gagliardini V, Grossniklaus U . The Arabidopsis thaliana MEDEA Polycomb group protein controls expression of PHERES1 by parental imprinting. Nat Genet. 2004; 37(1):28-30. DOI: 10.1038/ng1495. View

3.
Bullard J, Purdom E, Hansen K, Dudoit S . Evaluation of statistical methods for normalization and differential expression in mRNA-Seq experiments. BMC Bioinformatics. 2010; 11:94. PMC: 2838869. DOI: 10.1186/1471-2105-11-94. View

4.
Huang D, Sherman B, Lempicki R . Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources. Nat Protoc. 2009; 4(1):44-57. DOI: 10.1038/nprot.2008.211. View

5.
Wolf J, Hager R . A maternal-offspring coadaptation theory for the evolution of genomic imprinting. PLoS Biol. 2006; 4(12):e380. PMC: 1635750. DOI: 10.1371/journal.pbio.0040380. View