Genetics
NMR fine-mapping finds CETP among only four loci linked to bulk serum lipids, versus eight linked to lipoprotein subfractions (Hum Mol Genet 2012)
Original title: Genetic associations with lipoprotein subfractions provide information on their biological nature
Researchers measured 15 NMR-defined lipoprotein subfractions in 1791 samples to test whether more refined lipid phenotypes reveal genetic associations missed by studying bulk HDL and LDL cholesterol alone. Cluster analysis identified five distinct subfraction groups, including one (L1) only marginally captured by standard serum lipid measures. Eight loci, including CETP, LIPC, PLTP, FADS1-2-3, SORT1, GCKR, APOB, and APOA1, were significantly associated with the lipoprotein subfractions, whereas only four of these loci, CETP, SORT1, GCKR, and APOA1, were associated with bulk serum lipids, and LIPC showed a 10-fold increase in variance explained when subfractions were used instead. The authors conclude that NMR-based fine mapping of lipoprotein subfractions provides new insight into lipid metabolism biology and strengthens known genetic associations, including with CETP.
Original abstract
Adverse levels of lipoproteins are highly heritable and constitute risk factors for cardiovascular outcomes. Hitherto, genome-wide association studies revealed 95 lipid-associated loci. However, due to the small effect sizes of these associations large sample numbers (>100 000 samples) were needed. Here we show that analyzing more refined lipid phenotypes, namely lipoprotein subfractions, can increase the number of significantly associated loci compared with bulk high-density lipoprotein and low-density lipoprotein analysis in a study with identical sample numbers. Moreover, lipoprotein subfractions provide novel insight into the human lipid metabolism. We measured 15 lipoprotein subfractions (L1-L15) in 1791 samples using (1)H-NMR (nuclear magnetic resonance) spectroscopy. Using cluster analyses, we quantified inter-relationships among lipoprotein subfractions. Additionally, we analyzed associations with subfractions at known lipid loci. We identified five distinct groups of subfractions: one (L1) was only marginally captured by serum lipids and therefore extends our knowledge of lipoprotein biochemistry. During a lipid-tolerance test, L1 lost its special position. In the association analysis, we found that eight loci (LIPC, CETP, PLTP, FADS1-2-3, SORT1, GCKR, APOB, APOA1) were associated with the subfractions, whereas only four loci (CETP, SORT1, GCKR, APOA1) were associated with serum lipids. For LIPC, we observed a 10-fold increase in the variance explained by our regression models. In conclusion, NMR-based fine mapping of lipoprotein subfractions provides novel information on their biological nature and strengthens the associations with genetic loci. Future clinical studies are now needed to investigate their biomedical relevance.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.