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Another major epigenetic process involved in the control of gene expression is histone deacetylation.
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Amongst the four major types of epigenetic processes (DNA methylation, histone modifications, miRNA mediated transcriptional regulation and nuclear gene repositioning) found within eukaryotes, DNA methylation is the most highly studied.
In addition, oligonucleotide-based SILAC pull-downs have been extended to incorporate RNAs as baits, a development that is of considerable interest for the epigenetics field as it is becoming increasingly apparent that non-coding RNAs play a major role in epigenetic processes [ 96].
DNA methylation is a major epigenetic modification regulating several biological processes.
Methylation at position 5 of cytosines is a major epigenetic modification, which has an important impact on transcriptional and regulatory processes of DNA (Holliday, 1975).
DNA methylation is a major epigenetic modification of the mammalian genome that plays a vital role in cellular processes including gene expression, retrotransposon silencing, X chromosome inactivation, and genomic imprinting [ 1, 2].
One of the major epigenetic regulations is modulation of histone acetylation levels at genes required for certain biological processes.
DNA methylation, a major epigenetic modification of the genome found in most eukaryotes, is essential for normal development and crucial in many biological processes, such as gene expression regulation, genomic imprinting, X-chromosome inactivation, suppression of repetitive elements, and carcinogenesis.
This soul guides the gradual epigenetic process of development.
DNA methylation is a major epigenetic mechanism to regulate gene expression.
The methylation of cytosine within DNA is one of the major epigenetic modifications of the genome.
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