Telomere Length and Vascular Phenotypes in a Population-Based Cohort of Children and Midlife Adults.
Adult
Age Factors
Australia
Cardiovascular Diseases
/ diagnostic imaging
Carotid Arteries
/ diagnostic imaging
Carotid Intima-Media Thickness
Carotid-Femoral Pulse Wave Velocity
Child
Cross-Sectional Studies
Female
Humans
Male
Middle Aged
Phenotype
Risk Assessment
Risk Factors
Telomere
/ genetics
Telomere Homeostasis
Telomere Shortening
Vascular Remodeling
Vascular Stiffness
CheckPoint (Child Health CheckPoint) study
LSAC (Longitudinal Study of Australian Children)
aging
arterial stiffness
atherosclerosis
carotid intima‐media thickness
pulse‐wave velocity
Journal
Journal of the American Heart Association
ISSN: 2047-9980
Titre abrégé: J Am Heart Assoc
Pays: England
ID NLM: 101580524
Informations de publication
Date de publication:
04 06 2019
04 06 2019
Historique:
entrez:
30
5
2019
pubmed:
30
5
2019
medline:
1
9
2020
Statut:
ppublish
Résumé
Background Telomere length has been inversely associated with cardiovascular disease in adulthood, but its relationship to preclinical cardiovascular phenotypes across the life course remains unclear. We investigated associations of telomere length with vascular structure and function in children and midlife adults. Methods and Results Population-based cross-sectional CheckPoint (Child Health CheckPoint) study of 11- to 12-year-old children and their parents, nested within the LSAC (Longitudinal Study of Australian Children). Telomere length (telomeric genomic DNA [T]/β-globin single-copy gene [S] [T/S ratio]) was measured by quantitative polymerase chain reaction from blood-derived genomic DNA. Vascular structure was assessed by carotid intima-media thickness, and vascular function was assessed by carotid-femoral pulse-wave velocity and carotid elasticity. Mean (SD) T/S ratio was 1.09 (0.55) in children (n=1206; 51% girls) and 0.81 (0.38) in adults (n=1343; 87% women). Linear regression models, adjusted for potential confounders, revealed no evidence of an association between T/S ratio and carotid intima-media thickness, carotid-femoral pulse-wave velocity, or carotid elasticity in children. In adults, longer telomeres were associated with greater carotid elasticity (0.14% per 10-mm Hg higher per unit of T/S ratio; 95% CI, 0.04%-0.2%; P=0.007), but not carotid intima-media thickness (-0.9 μm; 95% CI, -14 to 13 μm; P=0.9) or carotid-femoral pulse-wave velocity (-0.10 m/s; 95% CI, -0.3 to 0.07 m/s; P=0.2). In logistic regression analysis, telomere length did not predict poorer vascular measures at either age. Conclusions In midlife adults, but not children, there was some evidence that telomere length was associated with vascular elasticity but not thickness. Associations between telomere length and cardiovascular phenotypes may become more evident in later life, with advancing pathological changes.
Identifiants
pubmed: 31140354
doi: 10.1161/JAHA.119.012707
pmc: PMC6585377
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
e012707Références
J Nutr Health Aging. 2011 Feb;15(2):153-6
pubmed: 21365170
J Physiol. 2016 Apr 15;594(8):2275-84
pubmed: 26140618
Nucleic Acids Res. 2002 May 15;30(10):e47
pubmed: 12000852
Methods Mol Biol. 2017;1587:1-13
pubmed: 28324493
Proc Natl Acad Sci U S A. 2014 Apr 22;111(16):5944-9
pubmed: 24711381
J Physiol. 2017 Mar 1;595(5):1627-1635
pubmed: 28247509
Arterioscler Thromb Vasc Biol. 2010 Aug;30(8):1649-56
pubmed: 20508208
Atherosclerosis. 2015 Feb;238(2):380-7
pubmed: 25555270
Am J Hypertens. 2010 Feb;23(2):180-5
pubmed: 19959999
Aging Male. 2011 Mar;14(1):27-32
pubmed: 21067315
Am J Epidemiol. 2017 Jun 15;185(12):1317-1326
pubmed: 28459963
BMJ. 2014 Jul 08;349:g4227
pubmed: 25006006
Obesity (Silver Spring). 2015 Nov;23(11):2165-74
pubmed: 26407932
Cerebrovasc Dis. 2012;34(4):290-6
pubmed: 23128470
BMJ Open. 2019 Jul 4;9(Suppl 3):118-126
pubmed: 31273022
Heart Lung Circ. 2014 Sep;23(9):883-90
pubmed: 24881030
Hypertension. 2001 Feb;37(2 Pt 2):381-5
pubmed: 11230304
Eur Heart J. 2013 Jul;34(28):2159-219
pubmed: 23771844
BMJ Open. 2019 Jul 4;9(Suppl 3):34-43
pubmed: 31273014
Atherosclerosis. 2013 May;228(1):1-11
pubmed: 23395523
Atherosclerosis. 2000 Oct;152(2):391-8
pubmed: 10998467
Arterioscler Thromb Vasc Biol. 2008 Jun;28(6):1165-71
pubmed: 18388332
J Hum Hypertens. 2014 Aug;28(8):475-81
pubmed: 24430704
Circulation. 2016 Jan 26;133(4):e38-360
pubmed: 26673558
J Hypertens. 2007 Aug;25(8):1678-86
pubmed: 17620966
Cardiol Rev. 2014 Sep-Oct;22(5):223-32
pubmed: 24441048
Circulation. 2005 Sep 6;112(10):1486-93
pubmed: 16129802
Haematologica. 2017 Aug;102(8):1457-1465
pubmed: 28522577
Eur Heart J. 2014 Dec 7;35(46):3296-303
pubmed: 24957070
J Am Heart Assoc. 2019 Jun 4;8(11):e012707
pubmed: 31140354
Adv Data. 2000 Jun 8;(314):1-27
pubmed: 11183293
J Atheroscler Thromb. 2016;23(1):18-31
pubmed: 26460381
Eur Heart J. 2009 Dec;30(24):3074-81
pubmed: 19687155
Acta Diabetol. 2016 Aug;53(4):661-7
pubmed: 27020053
Environ Res. 2017 Oct;158:480-489
pubmed: 28704792
BMJ Open. 2019 Jul 4;9(Suppl 3):106-117
pubmed: 31273021
Mech Ageing Dev. 2016 Oct;159:14-21
pubmed: 27155208
J Am Soc Echocardiogr. 2015 Mar;28(3):309-16
pubmed: 25459501
Am J Epidemiol. 2007 Jan 1;165(1):14-21
pubmed: 17043079
Endocr Connect. 2015 Sep;4(3):136-43
pubmed: 26034119
Pulse (Basel). 2017 Jan;4(4):180-192
pubmed: 28229053
BMJ Open. 2019 Jul 4;9(Suppl 3):23-33
pubmed: 31273013
J Hypertens. 2013 Nov;31(11):2237-43; discussion 2243
pubmed: 24077246
PLoS One. 2015 Aug 26;10(8):e0136676
pubmed: 26308091
Circ Res. 2017 Jul 21;121(3):214-219
pubmed: 28515044
BMJ Open. 2019 Jul 4;9(Suppl 3):3-22
pubmed: 31273012
Hypertens Res. 2011 Nov;34(11):1197-202
pubmed: 21796122
Nat Rev Mol Cell Biol. 2017 Mar;18(3):175-186
pubmed: 28096526
J Am Coll Cardiol. 2014 Feb 25;63(7):636-646
pubmed: 24239664
J Am Coll Cardiol. 2016 May 31;67(21):2467-76
pubmed: 27230041
Eur Heart J. 2008 Nov;29(21):2689-94
pubmed: 18762552
Eur Heart J. 2006 Nov;27(21):2588-605
pubmed: 17000623