Abstract
The mammalian genome is depleted in CG dinucleotides, except at protected regions where they cluster as CpG islands (CGIs). CGIs are gene regulatory hubs and serve as transcription initiation sites and are as expected, associated with gene promoters. Advances in genomic annotations demonstrate that a quarter of CGIs are found within genes. Such intragenic regions are repressive environments, so it is surprising that CGIs reside here and even more surprising that some resist repression and are transcriptionally active within a gene. Hence, intragenic CGI positioning within genes is not arbitrary and is instead, selected for. As a wealth of recent studies demonstrate, intragenic CGIs are embedded within genes and consequently, influence ‘host’ gene mRNA isoform length and expand transcriptome diversity.
Introduction
Gene regulation is a prerequisite of life, the seemingly simple decision of whether to express a gene or not is present in nearly all organisms. Regulatory elements are sequence specific motifs in the mammalian genome that coordinate gene expression. One fundamental class of regulatory element are the CpG islands (CGIs). CGIs are regions of the genome that are enriched for cytosine and guanine dinucleotides (CpGs) and have been defined bioinformatically as having a GC content over 50%, an observed CpG ratio compared to the whole genome (Obs/Exp) of over 0.6 and a length of over 200 bps () (Figure 1A). CpG’s in isolation are modified with DNA methylation, the addition of a methyl group onto cytosine, which is a heritable epigenetic mark. However, when CpGs congregate into islands they are generally protected from DNA methylation (; ; ).
FIGURE 1
Instances where CGIs are DNA methylated have been correlated with transcriptional silencing when they are in close proximity to transcription start sites (TSS) of genes (
iCGIs can impact gene expression in a multitude of ways either by being transcriptionally active themselves or through interactions with biological processes in close vicinity. Biochemical methods discovered that a quarter of all CGIs are within genes, existing as iCGIs. Recent studies have now tied iCGIs to multiple functions (
CGIs Are Promoters Independent of Genomic Position
Chromatin, the complex of DNA and histone proteins which forms chromosomes, can exist in an open or closed configuration indicative of active or inactive gene expression. The state of chromatin across the mammalian genome is studied through analysis of histone tail modifications, marking the histones that DNA is wrapped around. Over 100 histone modifications exist, some are well understood and some remain enigmatic, without a known biological function (
One state is bivalency, where CGIs are transcriptionally repressed, devoid of DNA methylation and exhibit both active histone 3 lysine 4 trimethylation (H3K4me3) and repressive histone 3 lysine 27 trimethylation (H3K27me3) modifications. Bivalency has been proposed to poise CGI promoters for activation (
A more stable form of repression at CGIs is through DNA methylation. In somatic tissues, DNA methylation represses promoter CGIs at the inactivated X chromosome (
iCGIs are more likely to be DNA methylated (Figure 1C) and those lacking DNA methylation can exhibit bivalent chromatin signatures and when transcriptionally active, show transcription factor binding and the promoter mark, H3K4me3 (
Consequences of Being an Intragenic CGI Within a Gene
The location of iCGIs within a gene is a turbulent place for a promoter region because active transcription results in the silencing of DNA which has been transcribed through. At first, this sounds paradoxical, but it has been identified at various loci that transcription through a gene promoter can silence it. This phenomenon was first demonstrated at the α-globin locus in a case of α-thalassemia where the LUC7L gene is juxtaposed upstream of HBA2. Here, LUC7L transcription extends through the HBA2 promoter CGI which is subsequently DNA methylated and silenced (
FIGURE 2

Schematics of how iCGIs impact gene regulation mechanisms. (A) Transcription through a ‘weak’ iCGI can silence it, depositing H3K36me3 and DNA methylation at the iCGI. (B) However, if the iCGI exhibits strong transcriptional activity, it can lead to transcriptional interference. This can result in events akin to those at the (C) H13/Mcts2 locus, that exhibits allele-specific PAS usage. Usage of the PAS is highlighted in yellow. (D) Similar mechanisms have been found other iCGIs. Alternatively, and in some cases, simultaneously, (E) the iCGI can act as a promoter itself, highlighted in blue, for either the host gene itself (gene X) or for a different ‘nested’ gene (gene Y).
This may indicate that tissue-specific patterns of DNA methylation at iCGIs are a by-product of transcription through the gene itself, where iCGI function as a promoter is silenced when the host gene is transcriptionally active. Whilst iCGIs hosted within an active gene are generally silenced, subsets of iCGIs that show more RNA Polymerase II binding are protected from this silencing and maintain their H3K4me3 promoter status (
What are the factors that dictate CGI strength? There is speculation that long CGIs may exhibit more sites for RNA Polymerase II binding (
Consequences on the Gene for Hosting an Active Intragenic CGI
Polyadenylation and splicing are co-transcriptional processes that can generate a diversity of mature mRNA isoforms from a single gene. Briefly, regulation of splicing and polyadenylation can control which exons of the pre-mRNA are utilised and when the pre-mRNA should be terminated. Alternative regulation of either of these processes impact the function of the mature mRNA (
Coincidentally, there are a wealth of studies linking active iCGIs to alternative polyadenylation (APA) events, specifically intronic APA (iAPA), which can alter the protein coding sequence of mRNA transcripts as it is terminated prematurely. This was first demonstrated at the imprinted Mcts2/H13 locus (
Outside of the imprinted context, two recent studies which perturbed DNA methylation showed similar results at iCGIs. Knockout of DNA methyltransferases (DNMT1 & DNMT3B) in cancer cells increased initiating RNA Polymerase II at the iCGI which was correlated with the usage of proximal polyadenylation sites of two host genes (
These findings demonstrate that a transcriptionally active iCGI can influence alternative polyadenylation and highlight the ways in which iCGIs can shape the transcriptome. Mechanistically, this is likely due to RNA polymerase II prematurely stopping because of meeting another initiating polymerase at the iCGI, otherwise known as transcriptional interference (TI) (
An active iCGI can also influence isoform choice more directly, by acting as an alternative promoter for the host gene (Figure 2D). The SHANK3 gene for example, contains an iCGI which is differentially methylated between hippocampus and cortex astrocytes. In hippocampus astrocytes, the iCGI is active and devoid of DNA methylation where it serves as an alternative promoter for SHANK3, transcribing a shorter mRNA transcript. Whereas in cortex astrocytes, when the iCGI is silenced through DNA methylation and instead, the canonical full length SHANK3 isoform is transcribed (
CGI Function as Enhancer Regions
Recent work suggests that CGIs may have another regulatory role as enhancers. Enhancers are cis-regulatory 50-150bp DNA sequences that are characterised by enriched transcription factor binding sites, H3K4me1 and H3K27ac histone modifications and when active, regions of bidirectional transcription produce enhancer RNAs (eRNAs) (
Enhancer signatures are also found at the other type of ‘orphan’ CGI, intergenic CGIs. A recent study has challenged the idea that these CGIs directly serve as enhancers, and instead, boost proximal enhancer function (
Conclusions, the Relevance of Intragenic CGIS in Biology
CGIs are regions where transcription can initiate. Whilst most CGIs are localised to annotated TSSs, many can be found intragenically. In some cases, the iCGI is silenced; in others, active iCGIs impact pre-mRNA processing and promote or contain enhancer function.
iCGIs are more prone to DNA methylation during embryonic development and adult development compared to their TSS CGI counterparts (
Similarly, DNA methylation of iCGIs prevents spurious intragenic transcription (
Given their distinct regulation and that many are protected from DNA methylation it is reasonable to suggest that iCGIs are required in mammalian biology. A clear challenge that has limited our understanding of iCGIs is their overlap with genomic annotations. Conventional short-read sequencing technologies present a challenge when trying to distinguish whether signals or reads stem from the host gene or the iCGI. The arrival of long-read sequencing technologies and the eventual decline in cost of such methods will allow these reads to be distinguished and aid understanding of iCGIs (
Statements
Author contributions
JC wrote and composed the paper, BM and RO provided supervision and contributed significantly to the final version of the paper.
Funding
JC is supported by the UK Medical Research Council MR/ N013700/1 and King’s College London and is a member of the MRC Doctoral Training Partnership in Biomedical Sciences.
Acknowledgments
We are extremely grateful to Hannah Mischo and Lisa Dressler for their insightful and useful comments on the review.
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
Publisher’s note
All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.
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Summary
Keywords
polyadenylation, epigenetics, DNA methylation, orphan CpG-Islands, CpG island (CGI), alternative polyadenylation (APA), mRNA processing
Citation
Cain JA, Montibus B and Oakey RJ (2022) Intragenic CpG Islands and Their Impact on Gene Regulation. Front. Cell Dev. Biol. 10:832348. doi: 10.3389/fcell.2022.832348
Received
09 December 2021
Accepted
20 January 2022
Published
11 February 2022
Volume
10 - 2022
Edited by
Robert Feil, UMR5535 Institut de Génétique Moléculaire de Montpellier (IGMM), France
Reviewed by
Maxim Van Cleef Greenberg, UMR7592 Institut Jacques Monod (IJM), France
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© 2022 Cain, Montibus and Oakey.
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*Correspondence: Rebecca J. Oakey, rebecca.oakey@kcl.ac.uk
† ORCID ID: James A. Cain, orcid.org/0000-0001-8141-0666 Bertille Montibus, orcid.org/0000-0002-6895-3954 Rebecca J. Oakey, orcid.org/0000-0003-2706-8139
This article was submitted to Developmental Epigenetics, a section of the journal Frontiers in Cell and Developmental Biology
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