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Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life

Telomere length (TL) and telomere shortening are biological indicators of aging, and epigenetic associates have been found for TL in adults. However, the role of epigenetic signatures in setting newborn TL and early life telomere dynamics is unknown. In the present study, based on 247 participating...

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Autores principales: Wang, Congrong, Nawrot, Tim S., Van Der Stukken, Charlotte, Tylus, Dominika, Sleurs, Hanne, Peusens, Martien, Alfano, Rossella, Langie, Sabine A.S., Plusquin, Michelle, Martens, Dries S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8221291/
https://www.ncbi.nlm.nih.gov/pubmed/34086604
http://dx.doi.org/10.18632/aging.203117
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author Wang, Congrong
Nawrot, Tim S.
Van Der Stukken, Charlotte
Tylus, Dominika
Sleurs, Hanne
Peusens, Martien
Alfano, Rossella
Langie, Sabine A.S.
Plusquin, Michelle
Martens, Dries S.
author_facet Wang, Congrong
Nawrot, Tim S.
Van Der Stukken, Charlotte
Tylus, Dominika
Sleurs, Hanne
Peusens, Martien
Alfano, Rossella
Langie, Sabine A.S.
Plusquin, Michelle
Martens, Dries S.
author_sort Wang, Congrong
collection PubMed
description Telomere length (TL) and telomere shortening are biological indicators of aging, and epigenetic associates have been found for TL in adults. However, the role of epigenetic signatures in setting newborn TL and early life telomere dynamics is unknown. In the present study, based on 247 participating newborns from the ENVIRONAGE birth cohort, whole-genome DNA methylation, profiled on the Illumina MethylationEPIC BeadChip microarray, and TL were measured in cord blood. In a follow-up visit at a mean age of 4.58 years, leukocyte TL was evaluated. We combined an epigenome-wide association study and a statistical learning method with re-sampling to select CpGs and their two-way interactions to model baseline (cord blood) TL and early-life telomere attrition rate, where distinct epigenetic signatures were identified for the two outcomes. In addition, a stronger epigenetic regulation was suggested in setting newborn TL than that of telomere dynamics in early life: 47 CpGs and 7 between-CpG interactions explained 76% of the variance in baseline TLs, while 72% of the total variance in telomere attrition rate was explained by 31 CpGs and 5 interactions. Functional enrichment analysis based on the selected CpGs in the two models revealed GLUT4 translocation and immune cell signaling pathways, respectively. These CpGs and interactions, as well as the cellular pathways, are potential novel targets of further investigation of telomere biology and aging.
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spelling pubmed-82212912021-06-26 Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life Wang, Congrong Nawrot, Tim S. Van Der Stukken, Charlotte Tylus, Dominika Sleurs, Hanne Peusens, Martien Alfano, Rossella Langie, Sabine A.S. Plusquin, Michelle Martens, Dries S. Aging (Albany NY) Research Paper Telomere length (TL) and telomere shortening are biological indicators of aging, and epigenetic associates have been found for TL in adults. However, the role of epigenetic signatures in setting newborn TL and early life telomere dynamics is unknown. In the present study, based on 247 participating newborns from the ENVIRONAGE birth cohort, whole-genome DNA methylation, profiled on the Illumina MethylationEPIC BeadChip microarray, and TL were measured in cord blood. In a follow-up visit at a mean age of 4.58 years, leukocyte TL was evaluated. We combined an epigenome-wide association study and a statistical learning method with re-sampling to select CpGs and their two-way interactions to model baseline (cord blood) TL and early-life telomere attrition rate, where distinct epigenetic signatures were identified for the two outcomes. In addition, a stronger epigenetic regulation was suggested in setting newborn TL than that of telomere dynamics in early life: 47 CpGs and 7 between-CpG interactions explained 76% of the variance in baseline TLs, while 72% of the total variance in telomere attrition rate was explained by 31 CpGs and 5 interactions. Functional enrichment analysis based on the selected CpGs in the two models revealed GLUT4 translocation and immune cell signaling pathways, respectively. These CpGs and interactions, as well as the cellular pathways, are potential novel targets of further investigation of telomere biology and aging. Impact Journals 2021-06-04 /pmc/articles/PMC8221291/ /pubmed/34086604 http://dx.doi.org/10.18632/aging.203117 Text en Copyright: © 2021 Wang et al. https://creativecommons.org/licenses/by/3.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/3.0/) (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Wang, Congrong
Nawrot, Tim S.
Van Der Stukken, Charlotte
Tylus, Dominika
Sleurs, Hanne
Peusens, Martien
Alfano, Rossella
Langie, Sabine A.S.
Plusquin, Michelle
Martens, Dries S.
Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life
title Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life
title_full Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life
title_fullStr Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life
title_full_unstemmed Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life
title_short Different epigenetic signatures of newborn telomere length and telomere attrition rate in early life
title_sort different epigenetic signatures of newborn telomere length and telomere attrition rate in early life
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8221291/
https://www.ncbi.nlm.nih.gov/pubmed/34086604
http://dx.doi.org/10.18632/aging.203117
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