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.

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