2 research outputs found
Plasma HDL cholesterol and risk of myocardial infarction: a mendelian randomisation study
Background High plasma HDL cholesterol is associated with reduced risk of myocardial infarction, but whether this
association is causal is unclear. Exploiting the fact that genotypes are randomly assigned at meiosis, are independent
of non-genetic confounding, and are unmodifi ed by disease processes, mendelian random isation can be used to test
the hypothesis that the association of a plasma biomarker with disease is causal.
Methods We performed two mendelian randomisation analyses. First, we used as an instrument a single nucleotide
polymorphism (SNP) in the endothelial lipase gene (LIPG Asn396Ser) and tested this SNP in 20 studies
(20 913 myocardial infarction cases, 95 407 controls). Second, we used as an instrument a genetic score consisting of
14 common SNPs that exclusively associate with HDL cholesterol and tested this score in up to 12 482 cases of
myocardial infarction and 41 331 controls. As a positive control, we also tested a genetic score of 13 common SNPs
exclusively associated with LDL cholesterol.
Findings Carriers of the LIPG 396Ser allele (2·6% frequency) had higher HDL cholesterol (0·14 mmol/L higher,
p=8×10–
¹³) but similar levels of other lipid and non-lipid risk factors for myocardial infarction compared with noncarriers.
This diff erence in HDL cholesterol is expected to decrease risk of myocardial infarction by 13% (odds ratio
[OR] 0·87, 95% CI 0·84–0·91). However, we noted that the 396Ser allele was not associated with risk of myocardial
infarction (OR 0·99, 95% CI 0·88–1·11, p=0·85). From observational epidemiology, an increase of 1 SD in HDL
cholesterol was associated with reduced risk of myocardial infarction (OR 0·62, 95% CI 0·58–0·66). However, a 1 SD
increase in HDL cholesterol due to genetic score was not associated with risk of myocardial infarction (OR 0·93,
95% CI 0·68–1·26, p=0·63). For LDL cholesterol, the estimate from observational epidemiology (a 1 SD increase in
LDL cholesterol associated with OR 1·54, 95% CI 1·45–1·63) was concordant with that from genetic score (OR 2·13,
95% CI 1·69–2·69, p=2×10–
¹⁰).
Interpretation Some genetic mechanisms that raise plasma HDL cholesterol do not seem to lower risk of myocardial
infarction. These data challenge the concept that raising of plasma HDL cholesterol will uniformly translate into
reductions in risk of myocardial infarction.
Funding US National Institutes of Health, The Wellcome Trust, European Union, British Heart Foundation, and the
German Federal Ministry of Education and Research
Association Between Telomere Length and Risk of Cancer and Non-Neoplastic Diseases: A Mendelian Randomization Study
Importance: The causal direction and magnitude of the association between telomere length and incidence of cancer and non-neoplastic diseases is uncertain owing to the susceptibility of observational studies to confounding and reverse causation. Objective: To conduct a Mendelian randomization study, using germline genetic variants as instrumental variables, to appraise the causal relevance of telomere length for risk of cancer and non-neoplastic diseases. Data Sources: Genomewide association studies (GWAS) published up to January 15, 2015. Study Selection: GWAS of noncommunicable diseases that assayed germline genetic variation and did not select cohort or control participants on the basis of preexisting diseases. Of 163 GWAS of noncommunicable diseases identified, summary data from 103 were available. Data Extraction and Synthesis: Summary association statistics for single nucleotide polymorphisms (SNPs) that are strongly associated with telomere length in the general population. Main Outcomes and Measures: Odds ratios (ORs) and 95% confidence intervals (CIs) for disease per standard deviation (SD) higher telomere length due to germline genetic variation. Results: Summary data were available for 35 cancers and 48 non-neoplastic diseases, corresponding to 420 081 cases (median cases, 2526 per disease) and 1 093 105 controls (median, 6789 per disease). Increased telomere length due to germline genetic variation was generally associated with increased risk for site-specific cancers. The strongest associations (ORs [95% CIs] per 1-SD change in genetically increased telomere length) were observed for glioma, 5.27 (3.15-8.81); serous low-malignant-potential ovarian cancer, 4.35 (2.39-7.94); lung adenocarcinoma, 3.19 (2.40-4.22); neuroblastoma, 2.98 (1.92-4.62); bladder cancer, 2.19 (1.32-3.66); melanoma, 1.87 (1.55-2.26); testicular cancer, 1.76 (1.02-3.04); kidney cancer, 1.55 (1.08-2.23); and endometrial cancer, 1.31 (1.07-1.61). Associations were stronger for rarer cancers and at tissue sites with lower rates of stem cell division. There was generally little evidence of association between genetically increased telomere length and risk of psychiatric, autoimmune, inflammatory, diabetic, and other non-neoplastic diseases, except for coronary heart disease (OR, 0.78 [95% CI, 0.67-0.90]), abdominal aortic aneurysm (OR, 0.63 [95% CI, 0.49-0.81]), celiac disease (OR, 0.42 [95% CI, 0.28-0.61]) and interstitial lung disease (OR, 0.09 [95% CI, 0.05-0.15]). Conclusions and Relevance: It is likely that longer telomeres increase risk for several cancers but reduce risk for some non-neoplastic diseases, including cardiovascular diseases