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Fetuin-A and its genetic association with cardiometabolic disease
Lawien Al Ali1, Yordi J van de Vegte2, M Abdullah Said2
1Department of Cardiology, University of Groningen, University Medical Center Groningen, Hanzeplein 1, PO Box 30.001, 9700 RB, Groningen, the Netherlands. l.al.ali@umcg.nl.
Insights
Genetically predicted fetuin-A is linked to a higher risk of type 2 diabetes. This protein also increases coronary artery disease risk in those with type 2 diabetes and lowers myocardial infarction risk in women.
Area of Science:
- Cardiovascular genetics
- Metabolic disease research
- Biomarker analysis
Background:
- Fetuin-A is implicated in calcification inhibition and insulin signaling.
- Previous research on fetuin-A's role in cardiometabolic diseases yielded conflicting findings.
Purpose of the Study:
- To investigate the association between genetically predicted fetuin-A levels and cardiometabolic diseases using Mendelian randomization.
- To clarify fetuin-A's specific roles in type 2 diabetes, coronary artery disease, and myocardial infarction.
Main Methods:
- Employed a two-sample Mendelian randomization strategy.
- Utilized genetic variants associated with fetuin-A from prior studies.
- Analyzed data from 412,444 unrelated individuals in the UK Biobank.
Main Results:
- Genetically predicted fetuin-A showed no association with stroke or myocardial infarction overall.
- Increased fetuin-A levels were associated with a higher risk of type 2 diabetes (OR=1.21).
- Fetuin-A increased coronary artery disease risk in individuals with type 2 diabetes (P interaction=0.03) and reduced myocardial infarction risk in women (P interaction<0.01).
Conclusions:
- Genetically predicted fetuin-A is associated with an increased risk of type 2 diabetes.
- Type 2 diabetes status modifies the association between fetuin-A and coronary artery disease.
- Higher fetuin-A levels are linked to reduced myocardial infarction risk in women, but not men.
Abstract:
Fetuin-A acts as both an inhibitor of calcification and insulin signaling. Previous studies reported conflicting results on the association between fetuin-A and cardiometabolic diseases. We aim to provide further insights into the association between genetically predicted levels of fetuin-A and cardiometabolic diseases using a Mendelian randomization strategy. Genetic variants associated with fetuin-A and their effect sizes were obtained from previous genetic studies. A series of two-sample Mendelian randomization analyses in 412,444 unrelated individuals from the UK Biobank did not show evidence for an association of genetically predicted fetuin-A with any stroke, ischemic stroke, or myocardial infarction. We do find that increased levels of genetically predicted fetuin-A are associated with increased risk of type 2 diabetes (OR = 1.21, 95%CI 1.13-1.30, P = < 0.01). Furthermore, genetically predicted fetuin-A increases the risk of coronary artery disease in individuals with type 2 diabetes, but we did not find evidence for an association between genetically predicted fetuin-A and coronary artery disease in those without type 2 diabetes (P for interaction = 0.03). One SD increase in genetically predicted fetuin-A decreases risk of myocardial infarction in women, but we do not find evidence for an association between genetically predicted fetuin-A and myocardial infarction in men (P for interaction = < 0.01). Genetically predicted fetuin-A is associated with type 2 diabetes. Furthermore, type 2 diabetes status modifies the association of genetically predicted fetuin-A with coronary artery disease, indicating that fetuin-A increases risk in individuals with type 2 diabetes. Finally, higher genetically predicted fetuin-A reduces the risk of myocardial infarction in women, but we do not find evidence for an association between genetically predicted fetuin-A and myocardial infarction in men.
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