Published December 19, 2022 | Version v0

Estimation and implications of the genetic architecture of fasting and non-fasting blood glucose

  • 1. Garvan Institute of Medical Research, Darlinghurst, NSW, Australia; Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia
  • 2. Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia
  • 3. Department of Epidemiology, University of Groningen, University Medical Center Groningen, Groningen, Netherlands; Laboratory of Environmental Medicine and Developmental Toxicology, Shantou University Medical College, 515041, Guangdong, China
  • 4. Department of Epidemiology, University of Groningen, University Medical Center Groningen, Groningen, Netherlands; Institute of Genomics, University of Tartu, Tartu, Estonia
  • 5. Department of Epidemiology, University of Groningen, University Medical Center Groningen, Groningen, Netherlands
  • 6. A full list of members and affiliations appears in the Supplementary Information
  • 7. Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia; Queensland Brain Institute, The University of Queensland, Brisbane, QLD 4072, Australia

Description

This upload includes the sample code that was used in the paper "Estimation and implications of the genetic architecture of fasting and non-fasting blood glucose", which has been accepted for publication in Nature Communications.

Abstract 

The genetic regulation of post-prandial glucose levels is poorly understood. Here, we characterise the genetic architecture of blood glucose variably measured within 0 and 24 hours of fasting in 368,000 European ancestry participants of the UK Biobank. We found a near-linear increase in the heritability of non-fasting glucose levels over time, which plateaus to its fasting state value after 5 hours post meal (h2=11%; standard error: 1%). The genetic correlation between different fasting times is > 0.77, suggesting that the genetic control of glucose is largely constant across fasting durations. Accounting for heritability differences between fasting times leads to a ~16% improvement in the discovery of genetic variants associated with glucose. Newly detected variants improve the prediction of fasting glucose and type 2 diabetes in independent samples. Finally, we meta-analysed summary statistics from genome-wide association studies of random and fasting glucose (N=518,615) and identified 156 independent SNPs explaining 3% of fasting glucose variance. Altogether, our study demonstrates the utility of random glucose measures to improve discovery of genetic variants associated with glucose homeostasis, even in fasting conditions.

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