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Erschienen in: European Journal of Epidemiology 2/2020

28.09.2019 | NEURO-EPIDEMIOLOGY

Observational and genetic studies of short telomeres and Alzheimer’s disease in 67,000 and 152,000 individuals: a Mendelian randomization study

verfasst von: Alexander Scheller Madrid, Katrine L. Rasmussen, Line Rode, Ruth Frikke-Schmidt, Børge G. Nordestgaard, Stig E. Bojesen

Erschienen in: European Journal of Epidemiology | Ausgabe 2/2020

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Abstract

Short telomeres might lead to increased risk of Alzheimer’s disease, but observational analyses have been inconclusive and potentially confounded by the strong association of both telomere length and risk of Alzheimer’s disease with age and adverse lifestyle. To circumvent this, analyses including single nucleotide polymorphisms associated with telomere length used in an instrumental variable analysis produces risk estimates likely free of distortions from reverse causation and of most confounding. We tested the hypothesis that short telomeres are associated with increased risk of Alzheimer’s disease, observationally and causal, genetically. Telomere length was measured in 66,567 individuals, and genotyped for rs2487999 in OBFC1, rs7726159 in TERT, and rs1317082 in TERC causing lifelong telomere shortening in 98,146 individuals from two Copenhagen studies. Genetic data on 54,162 individuals from the International Genomics of Alzheimer’s Project were also included. Observationally, multifactorially adjusted hazard ratio for Alzheimer’s disease was 1.02 (95% CI 1.00–1.03) per 200 base pair shorter telomeres. Telomere length was 335 base pairs shorter in individuals with 6 versus 0–1 alleles (p = 5 × 10−105). Genetically, odds ratio for Alzheimer’s disease was 1.08 (1.01–1.16) per 200 base pairs shorter telomeres. Similar results were found in strata of age and comorbidities. In comparative analyses, genetically predicted shorter telomeres were associated with increased risk of myocardial infarction, and with decreased risks of lung cancer and melanoma as previously reported. Short telomeres were associated observationally and causal, genetically with increased risk of Alzheimer’s disease. Telomere biology is therefore a potential pathway involved in the development of Alzheimer’s disease.
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Literatur
2.
Zurück zum Zitat Prince M, Wimo A, Guerchet M, et al. World Alzheimer Report 2015—the global impact of Dementia: an analysis of prevalence, incidence, cost and trends. London: Alzheimer’s Disease International; 2015. p. 84. Prince M, Wimo A, Guerchet M, et al. World Alzheimer Report 2015—the global impact of Dementia: an analysis of prevalence, incidence, cost and trends. London: Alzheimer’s Disease International; 2015. p. 84.
8.
Zurück zum Zitat Panossian LA, Porter VR, Valenzuela HF, et al. Telomere shortening in T cells correlates with Alzheimer’s disease status. Neurobiol Aging. 2003;24(1):77–84.CrossRef Panossian LA, Porter VR, Valenzuela HF, et al. Telomere shortening in T cells correlates with Alzheimer’s disease status. Neurobiol Aging. 2003;24(1):77–84.CrossRef
27.
Zurück zum Zitat Ishikawa F. CST Complex and Telomere Maintenance. In: Hanaoka F, Sugasawa K, editors. DNA replication, recombination, and repair: molecular mechanisms and pathology. Tokyo: Springer Japan; 2016. p. 389–401.CrossRef Ishikawa F. CST Complex and Telomere Maintenance. In: Hanaoka F, Sugasawa K, editors. DNA replication, recombination, and repair: molecular mechanisms and pathology. Tokyo: Springer Japan; 2016. p. 389–401.CrossRef
28.
Zurück zum Zitat Didelez V, Meng S, Sheehan NA. Assumptions of IV methods for observational epidemiology. Stat Sci. 2010;25:22–40.CrossRef Didelez V, Meng S, Sheehan NA. Assumptions of IV methods for observational epidemiology. Stat Sci. 2010;25:22–40.CrossRef
29.
Zurück zum Zitat Burgess S, Scott RA, Timpson NJ, Smith GD, Thompson SG, Consortium E-I. Using published data in Mendelian randomization: a blueprint for efficient identification of causal risk factors. Eur J Epidemiol. 2015;30(7):543–52.CrossRef Burgess S, Scott RA, Timpson NJ, Smith GD, Thompson SG, Consortium E-I. Using published data in Mendelian randomization: a blueprint for efficient identification of causal risk factors. Eur J Epidemiol. 2015;30(7):543–52.CrossRef
34.
Zurück zum Zitat Sanderson SL, Simon AK. In aged primary T cells, mitochondrial stress contributes to telomere attrition measured by a novel imaging flow cytometry assay. Aging Cell. 2017;16(6):1234–43.CrossRef Sanderson SL, Simon AK. In aged primary T cells, mitochondrial stress contributes to telomere attrition measured by a novel imaging flow cytometry assay. Aging Cell. 2017;16(6):1234–43.CrossRef
44.
Zurück zum Zitat Thomas P, O’Callaghan NJ, Fenech M. Telomere length in white blood cells, buccal cells and brain tissue and its variation with ageing and Alzheimer’s disease. Mech Ageing Dev. 2008;129(4):183.CrossRef Thomas P, O’Callaghan NJ, Fenech M. Telomere length in white blood cells, buccal cells and brain tissue and its variation with ageing and Alzheimer’s disease. Mech Ageing Dev. 2008;129(4):183.CrossRef
Metadaten
Titel
Observational and genetic studies of short telomeres and Alzheimer’s disease in 67,000 and 152,000 individuals: a Mendelian randomization study
verfasst von
Alexander Scheller Madrid
Katrine L. Rasmussen
Line Rode
Ruth Frikke-Schmidt
Børge G. Nordestgaard
Stig E. Bojesen
Publikationsdatum
28.09.2019
Verlag
Springer Netherlands
Erschienen in
European Journal of Epidemiology / Ausgabe 2/2020
Print ISSN: 0393-2990
Elektronische ISSN: 1573-7284
DOI
https://doi.org/10.1007/s10654-019-00563-w

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