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Heritability of the glycan clock of biological age

Immunoglobulin G is posttranslationally modified by the addition of complex N-glycans affecting its function and mediating inflammation at multiple levels. IgG glycome composition changes with age and health in a predictive pattern, presumably due to inflammaging. As a result, a novel biological agi...

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Autores principales: Mijakovac, Anika, Frkatović, Azra, Hanić, Maja, Ivok, Jelena, Martinić Kavur, Marina, Pučić-Baković, Maja, Spector, Tim, Zoldoš, Vlatka, Mangino, Massimo, Lauc, Gordan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9815111/
https://www.ncbi.nlm.nih.gov/pubmed/36619858
http://dx.doi.org/10.3389/fcell.2022.982609
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author Mijakovac, Anika
Frkatović, Azra
Hanić, Maja
Ivok, Jelena
Martinić Kavur, Marina
Pučić-Baković, Maja
Spector, Tim
Zoldoš, Vlatka
Mangino, Massimo
Lauc, Gordan
author_facet Mijakovac, Anika
Frkatović, Azra
Hanić, Maja
Ivok, Jelena
Martinić Kavur, Marina
Pučić-Baković, Maja
Spector, Tim
Zoldoš, Vlatka
Mangino, Massimo
Lauc, Gordan
author_sort Mijakovac, Anika
collection PubMed
description Immunoglobulin G is posttranslationally modified by the addition of complex N-glycans affecting its function and mediating inflammation at multiple levels. IgG glycome composition changes with age and health in a predictive pattern, presumably due to inflammaging. As a result, a novel biological aging biomarker, glycan clock of age, was developed. Glycan clock of age is the first of biological aging clocks for which multiple studies showed a possibility of clock reversal even with simple lifestyle interventions. However, none of the previous studies determined to which extent the glycan clock can be turned, and how much is fixed by genetic predisposition. To determine the contribution of genetic and environmental factors to phenotypic variation of the glycan clock, we performed heritability analysis on two TwinsUK female cohorts. IgG glycans from monozygotic and dizygotic twin pairs were analyzed by UHPLC and glycan age was calculated using the glycan clock. In order to determine additive genetic, shared, and unique environmental contributions, a classical twin design was applied. Heritability of the glycan clock was calculated for participants of one cross-sectional and one longitudinal cohort with three time points to assess the reliability of measurements. Heritability estimate for the glycan clock was 39% on average, suggesting a moderate contribution of additive genetic factors (A) to glycan clock variation. Remarkably, heritability estimates remained approximately the same in all time points of the longitudinal study, even though IgG glycome composition changed substantially. Most environmental contributions came from shared environmental factors (C), with unique environmental factors (E) having a minor role. Interestingly, heritability estimates nearly doubled, to an average of 71%, when we included age as a covariant. This intervention also inflated the estimates of unique environmental factors contributing to glycan clock variation. A complex interplay between genetic and environmental factors defines alternative IgG glycosylation during aging and, consequently, dictates the glycan clock’s ticking. Apparently, environmental factors (including lifestyle choices) have a strong impact on the biological age measured with the glycan clock, which additionally clarifies why this aging clock is one of the most potent biomarkers of biological aging.
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spelling pubmed-98151112023-01-06 Heritability of the glycan clock of biological age Mijakovac, Anika Frkatović, Azra Hanić, Maja Ivok, Jelena Martinić Kavur, Marina Pučić-Baković, Maja Spector, Tim Zoldoš, Vlatka Mangino, Massimo Lauc, Gordan Front Cell Dev Biol Cell and Developmental Biology Immunoglobulin G is posttranslationally modified by the addition of complex N-glycans affecting its function and mediating inflammation at multiple levels. IgG glycome composition changes with age and health in a predictive pattern, presumably due to inflammaging. As a result, a novel biological aging biomarker, glycan clock of age, was developed. Glycan clock of age is the first of biological aging clocks for which multiple studies showed a possibility of clock reversal even with simple lifestyle interventions. However, none of the previous studies determined to which extent the glycan clock can be turned, and how much is fixed by genetic predisposition. To determine the contribution of genetic and environmental factors to phenotypic variation of the glycan clock, we performed heritability analysis on two TwinsUK female cohorts. IgG glycans from monozygotic and dizygotic twin pairs were analyzed by UHPLC and glycan age was calculated using the glycan clock. In order to determine additive genetic, shared, and unique environmental contributions, a classical twin design was applied. Heritability of the glycan clock was calculated for participants of one cross-sectional and one longitudinal cohort with three time points to assess the reliability of measurements. Heritability estimate for the glycan clock was 39% on average, suggesting a moderate contribution of additive genetic factors (A) to glycan clock variation. Remarkably, heritability estimates remained approximately the same in all time points of the longitudinal study, even though IgG glycome composition changed substantially. Most environmental contributions came from shared environmental factors (C), with unique environmental factors (E) having a minor role. Interestingly, heritability estimates nearly doubled, to an average of 71%, when we included age as a covariant. This intervention also inflated the estimates of unique environmental factors contributing to glycan clock variation. A complex interplay between genetic and environmental factors defines alternative IgG glycosylation during aging and, consequently, dictates the glycan clock’s ticking. Apparently, environmental factors (including lifestyle choices) have a strong impact on the biological age measured with the glycan clock, which additionally clarifies why this aging clock is one of the most potent biomarkers of biological aging. Frontiers Media S.A. 2022-12-22 /pmc/articles/PMC9815111/ /pubmed/36619858 http://dx.doi.org/10.3389/fcell.2022.982609 Text en Copyright © 2022 Mijakovac, Frkatović, Hanić, Ivok, Martinić Kavur, Pučić-Baković, Spector, Zoldoš, Mangino and Lauc. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cell and Developmental Biology
Mijakovac, Anika
Frkatović, Azra
Hanić, Maja
Ivok, Jelena
Martinić Kavur, Marina
Pučić-Baković, Maja
Spector, Tim
Zoldoš, Vlatka
Mangino, Massimo
Lauc, Gordan
Heritability of the glycan clock of biological age
title Heritability of the glycan clock of biological age
title_full Heritability of the glycan clock of biological age
title_fullStr Heritability of the glycan clock of biological age
title_full_unstemmed Heritability of the glycan clock of biological age
title_short Heritability of the glycan clock of biological age
title_sort heritability of the glycan clock of biological age
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9815111/
https://www.ncbi.nlm.nih.gov/pubmed/36619858
http://dx.doi.org/10.3389/fcell.2022.982609
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