Abstract
Cytosines at cytosine-guanine (CG) dinucleotides are the near-exclusive target of DNA methyltransferases in mammalian genomes. Spontaneous deamination of methylcytosine to thymine makes methylated cytosines unusually susceptible to mutation and consequent depletion. The loci where CG dinucleotides remain relatively enriched, presumably due to their unmethylated status during the germ cell cycle, have been referred to as CpG islands. Currently, CpG islands are solely defined by base compositional criteria, allowing annotation of any sequenced genome. Using a novel bioinformatic approach, we show that CG clusters can be identified as an inherent property of genomic sequence without imposing a base compositional a priori assumption. We also show that the CG clusters co-localize in the human genome with hypomethylated loci and annotated transcription start sites to a greater extent than annotations produced by prior CpG island definitions. Moreover, this new approach allows CG clusters to be identified in a species-specific manner, revealing a degree of orthologous conservation that is not revealed by current base compositional approaches. Finally, our approach is able to identify methylating genomes (such as Takifugu rubripes) that lack CG clustering entirely, in which it is inappropriate to annotate CpG islands or CG clusters.
MeSH Terms
Animals
CpG Islands
DNA Methylation
Dinucleoside Phosphates/analysis
Genome
Humans
Mice
Species Specificity
Takifugu/genetics
Chemicals
Dinucleoside Phosphates
cytidylyl-3'-5'-guanosine
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Glass Jacob L
Department of Molecular Genetics, Albert Einstein College of Medicine, Bronx, NY 10461, USA, Division of Hematology/Oncology, University of Kentucky, Markey Cancer Center, 800 Rose Street, Lexington KY 40536, USA.
Thompson Reid F
Khulan Batbayar
Figueroa Maria E
Olivier Emmanuel N
Oakley Erin J
Van Zant Gary
Bouhassira Eric E
Melnick Ari
Golden Aaron
Fazzari Melissa J
Greally John M
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