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Global DNA methylation analysis of human atherosclerotic plaques reveals extensive genomic hypomethylation and reactivation at imprinted locus 14q32 involving induction of a miRNA cluster

(2015) EUROPEAN HEART JOURNAL. 36(16). p.993-U23
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Abstract
Aims: Genetics can explain just above 10% of the observed heritability in cardiovascular diseases. Epigenetics is about to provide some further explanations, but the information needed for that is in the accumulation phase. Genome-wide DNA methylation analysis has revealed thousands of genes, which are epigenetically differentially regulated in atherosclerotic plaques. Our results point to an additional level of complexity that needs to be integrated into the aetiology of atherogenesis.We conducted a genome-wide analysis to identify differentially methylated genes in atherosclerotic lesions. Methods: DNA methylation at promoters, exons and introns was identified by massive parallel sequencing. Gene expression was analysed by microarrays, qPCR, immunohistochemistry and western blots. Results: Globally, hypomethylation of chromosomal DNA predominates in atherosclerotic plaques and two-thirds of genes showing over 2.5-fold differential in DNA methylation are up-regulated in comparison to healthy mammary arteries. The imprinted chromatin locus 14q32 was identified for the first time as an extensively hypomethylated area in atherosclerosis with highly induced expression of miR127, -136, -410, -431, -432, -433 and capillary formation-associated gene RTL1. The top 100 list of hypomethylated promoters exhibited over 1000-fold enrichment for miRNAs, many of which mapped to locus 14q32. Unexpectedly, also gene body hypermethylation was found to correlate with stimulated mRNA expression. Conclusion: Significant changes in genomic methylation were identified in atherosclerotic lesions. The most prominent gene cluster activated via hypomethylation was detected at imprinted chromosomal locus 14q32 with several clustered miRNAs that were up-regulated. These results suggest that epigenetic changes are involved in atherogenesis and may offer new potential therapeutic targets for vascular diseases.
Keywords
Epigenetics, DNA methylation, Peripheral vascular disease, GENE-EXPRESSION, GROWTH, CELLS, REPRESSION, ARTERIES, DISEASE, LESIONS, TUMOR, Atherosclerosis

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MLA
Aavik, Einari, et al. “Global DNA Methylation Analysis of Human Atherosclerotic Plaques Reveals Extensive Genomic Hypomethylation and Reactivation at Imprinted Locus 14q32 Involving Induction of a MiRNA Cluster.” EUROPEAN HEART JOURNAL, vol. 36, no. 16, 2015, pp. 993-U23, doi:10.1093/eurheartj/ehu437.
APA
Aavik, E., Lumivuori, H., Leppänen, O., Wirth, T., Häkkinen, S.-K., Bräsen, J.-H., … Ylä-Herttuala, S. (2015). Global DNA methylation analysis of human atherosclerotic plaques reveals extensive genomic hypomethylation and reactivation at imprinted locus 14q32 involving induction of a miRNA cluster. EUROPEAN HEART JOURNAL, 36(16), 993-U23. https://doi.org/10.1093/eurheartj/ehu437
Chicago author-date
Aavik, Einari, Henri Lumivuori, Olli Leppänen, Thomas Wirth, Sanna-Kaisa Häkkinen, Jan-Hinrich Bräsen, Ulrich Beschorner, et al. 2015. “Global DNA Methylation Analysis of Human Atherosclerotic Plaques Reveals Extensive Genomic Hypomethylation and Reactivation at Imprinted Locus 14q32 Involving Induction of a MiRNA Cluster.” EUROPEAN HEART JOURNAL 36 (16): 993-U23. https://doi.org/10.1093/eurheartj/ehu437.
Chicago author-date (all authors)
Aavik, Einari, Henri Lumivuori, Olli Leppänen, Thomas Wirth, Sanna-Kaisa Häkkinen, Jan-Hinrich Bräsen, Ulrich Beschorner, Thomas Zeller, Maarten Braspenning, Wim Van Criekinge, Kimmo Mäkinen, and Seppo Ylä-Herttuala. 2015. “Global DNA Methylation Analysis of Human Atherosclerotic Plaques Reveals Extensive Genomic Hypomethylation and Reactivation at Imprinted Locus 14q32 Involving Induction of a MiRNA Cluster.” EUROPEAN HEART JOURNAL 36 (16): 993-U23. doi:10.1093/eurheartj/ehu437.
Vancouver
1.
Aavik E, Lumivuori H, Leppänen O, Wirth T, Häkkinen S-K, Bräsen J-H, et al. Global DNA methylation analysis of human atherosclerotic plaques reveals extensive genomic hypomethylation and reactivation at imprinted locus 14q32 involving induction of a miRNA cluster. EUROPEAN HEART JOURNAL. 2015;36(16):993-U23.
IEEE
[1]
E. Aavik et al., “Global DNA methylation analysis of human atherosclerotic plaques reveals extensive genomic hypomethylation and reactivation at imprinted locus 14q32 involving induction of a miRNA cluster,” EUROPEAN HEART JOURNAL, vol. 36, no. 16, pp. 993-U23, 2015.
@article{7154469,
  abstract     = {{Aims: Genetics can explain just above 10% of the observed heritability in cardiovascular diseases. Epigenetics is about to provide some further explanations, but the information needed for that is in the accumulation phase. Genome-wide DNA methylation analysis has revealed thousands of genes, which are epigenetically differentially regulated in atherosclerotic plaques. Our results point to an additional level of complexity that needs to be integrated into the aetiology of atherogenesis.We conducted a genome-wide analysis to identify differentially methylated genes in atherosclerotic lesions. 
Methods: DNA methylation at promoters, exons and introns was identified by massive parallel sequencing. Gene expression was analysed by microarrays, qPCR, immunohistochemistry and western blots. 
Results: Globally, hypomethylation of chromosomal DNA predominates in atherosclerotic plaques and two-thirds of genes showing over 2.5-fold differential in DNA methylation are up-regulated in comparison to healthy mammary arteries. The imprinted chromatin locus 14q32 was identified for the first time as an extensively hypomethylated area in atherosclerosis with highly induced expression of miR127, -136, -410, -431, -432, -433 and capillary formation-associated gene RTL1. The top 100 list of hypomethylated promoters exhibited over 1000-fold enrichment for miRNAs, many of which mapped to locus 14q32. Unexpectedly, also gene body hypermethylation was found to correlate with stimulated mRNA expression. 
Conclusion: Significant changes in genomic methylation were identified in atherosclerotic lesions. The most prominent gene cluster activated via hypomethylation was detected at imprinted chromosomal locus 14q32 with several clustered miRNAs that were up-regulated. These results suggest that epigenetic changes are involved in atherogenesis and may offer new potential therapeutic targets for vascular diseases.}},
  author       = {{Aavik, Einari and Lumivuori, Henri and Leppänen, Olli and Wirth, Thomas and Häkkinen, Sanna-Kaisa and Bräsen, Jan-Hinrich and Beschorner, Ulrich and Zeller, Thomas and Braspenning, Maarten and Van Criekinge, Wim and Mäkinen, Kimmo and Ylä-Herttuala, Seppo}},
  issn         = {{0195-668X}},
  journal      = {{EUROPEAN HEART JOURNAL}},
  keywords     = {{Epigenetics,DNA methylation,Peripheral vascular disease,GENE-EXPRESSION,GROWTH,CELLS,REPRESSION,ARTERIES,DISEASE,LESIONS,TUMOR,Atherosclerosis}},
  language     = {{eng}},
  number       = {{16}},
  pages        = {{993--U23}},
  title        = {{Global DNA methylation analysis of human atherosclerotic plaques reveals extensive genomic hypomethylation and reactivation at imprinted locus 14q32 involving induction of a miRNA cluster}},
  url          = {{http://doi.org/10.1093/eurheartj/ehu437}},
  volume       = {{36}},
  year         = {{2015}},
}

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