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Vitamin D-related genes and cardiometabolic markers in healthy children: a Mendelian randomisation study
Ania Lopez-Mayorga1, Hanne Hauger1, Rikke A Petersen2
1Department of Nutrition, Exercise and Sports, Faculty of Science, University of Copenhagen, 1958Frederiksberg, Denmark.
Insights
Genetic variations significantly impact vitamin D levels in children. However, a genetic risk score did not link to cardiometabolic markers, though VDR gene variants modified vitamin D
Area of Science:
- Pediatric Endocrinology
- Nutritional Genomics
- Cardiovascular Health
Background:
- Low serum 25-hydroxyvitamin D (25(OH)D) is linked to cardiometabolic risk factors.
- Genetic factors influence vitamin D metabolism and action.
Purpose of the Study:
- To investigate the association between genetic variations in vitamin D metabolism/action genes and cardiometabolic markers in children.
- To examine if genetic polymorphisms modify the relationship between 25(OH)D and cardiometabolic risk.
Main Methods:
- Mendelian randomisation study in 699 healthy children (8-11 years).
- Genotyped eleven single nucleotide polymorphisms (SNPs) in vitamin D-related genes (DHCR7, GC, CYP2R1, CYP24A1, CYP27B1, VDR).
- Generated a genetic risk score for low 25(OH)D and assessed its association with blood pressure, lipids, and insulin; explored gene-vitamin D-marker interactions.
Main Results:
- SNPs in GC and CYP2R1 genes influenced serum 25(OH)D levels.
- A genetic risk score for low 25(OH)D was not associated with cardiometabolic markers.
- Interactions between VDR gene polymorphisms and 25(OH)D were observed for triglycerides, systolic blood pressure, and insulin.
Conclusions:
- Genetic variation substantially affects 25(OH)D levels in children.
- The genetic risk score did not predict cardiometabolic markers.
- VDR polymorphisms may modify the impact of vitamin D on cardiometabolic risk, meriting further research.
Abstract:
Observational studies show associations between low serum 25-hydroxyvitamin D (25(OH)D) and cardiometabolic risk markers. This Mendelian randomisation study examined associations between cardiometabolic markers in children and SNP in genes related to vitamin D metabolism (DHCR7; group-specific complement (GC); cytochrome P450 subfamily IIR1 (CYP2R1); and CYP24A1) and action (CYP27B1 and VDR). In 699 healthy 8-11-year-old children, we genotyped eleven SNP. We generated a genetic risk score based on SNP associated with low 25(OH)D and investigated associations between this and blood pressure, plasma lipids and insulin. Furthermore, we examined whether SNP related to vitamin D actions modified associations between 25(OH)D and the cardiometabolic markers. All GC and CYP2R1 SNP influenced serum 25(OH)D. A risk score based on four of the six SNP was associated with 3·4 (95 % CI 2·6, 4·2) mmol/l lower 25(OH)D per risk allele (P < 0·001), but was not associated with the cardiometabolic markers. However, interactions were indicated for the three VDR SNP (Pinteraction < 0·081) on associations between 25(OH)D and TAG, systolic blood pressure and insulin, which all decreased with increasing 25(OH)D only in major allele homozygotes (β -0·02 (95 % CI -0·04, -0·01) mmol/l; β -0·5 (95 % CI -0·9, -0·1) mmHg; and β -0·5 (95 % CI -1·4, 0·3) pmol/l, respectively). In conclusion, genetic variation affected 25(OH)D substantially, but the genetic score was not associated with cardiometabolic markers in children. However, VDR polymorphisms modified associations with vitamin D, which warrants further investigation of VDR's role in the relationship between vitamin D and cardiometabolic risk.
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