Modeling DNA Methylation Profiles through a Dynamic Equilibrium between Methylation and Demethylation.
DNA demethylation
DNA methylation
cell-to-cell heterogeneity
epialleles
mathematical modeling
methylation profiles
statistical equilibrium
Journal
Biomolecules
ISSN: 2218-273X
Titre abrégé: Biomolecules
Pays: Switzerland
ID NLM: 101596414
Informations de publication
Date de publication:
03 09 2020
03 09 2020
Historique:
received:
09
07
2020
revised:
31
08
2020
accepted:
01
09
2020
entrez:
9
9
2020
pubmed:
10
9
2020
medline:
25
6
2021
Statut:
epublish
Résumé
DNA methylation is a heritable epigenetic mark that plays a key role in regulating gene expression. Mathematical modeling has been extensively applied to unravel the regulatory mechanisms of this process. In this study, we aimed to investigate DNA methylation by performing a high-depth analysis of particular loci, and by subsequent modeling of the experimental results. In particular, we performed an in-deep DNA methylation profiling of two genomic loci surrounding the transcription start site of the D-Aspartate Oxidase and the D-Serine Oxidase genes in different samples (n = 51). We found evidence of cell-to-cell differences in DNA methylation status. However, these cell differences were maintained between different individuals, which indeed showed very similar DNA methylation profiles. Therefore, we hypothesized that the observed pattern of DNA methylation was the result of a dynamic balance between DNA methylation and demethylation, and that this balance was identical between individuals. We hence developed a simple mathematical model to test this hypothesis. Our model reliably captured the characteristics of the experimental data, suggesting that DNA methylation and demethylation work together in determining the methylation state of a locus. Furthermore, our model suggested that the methylation status of neighboring cytosines plays an important role in this balance.
Identifiants
pubmed: 32899254
pii: biom10091271
doi: 10.3390/biom10091271
pmc: PMC7564540
pii:
doi:
Substances chimiques
Cytosine
8J337D1HZY
DAO protein, human
EC 1.4.3.-
Dao1 protein, mouse
EC 1.4.3.-
D-Aspartate Oxidase
EC 1.4.3.1
DDO protein, human
EC 1.4.3.1
D-Amino-Acid Oxidase
EC 1.4.3.3
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
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