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Genetics

Nat Rev Cardiol: most genetic variants that raise HDL-C don't lower cardiovascular risk, but CETP variants are a notable exception (Nat Rev Cardiol 2018)

Original title: HDL and atherosclerotic cardiovascular disease: genetic insights into complex biology

Nat Rev Cardiol · · 5

Rosenson RS, Brewer HB, Barter PJ, Björkegren JLM, Chapman MJ, Gaudet D, Kim DS, Niesor E, Rye KA, Sacks FM, Tardif JC, Hegele RA

A review by a large panel of lipid researchers examines why plasma HDL-C predicts cardiovascular disease risk epidemiologically while a direct causal role for HDL remains contested. Animal models and rare human monogenic disorders link causality to specific HDL functional mechanisms, particularly particle functionality rather than cholesterol content. Mendelian randomisation studies show that most genetic variants raising HDL-C across various pathways are not associated with reduced cardiovascular risk, with some exceptions, notably CETP variants. Only a fraction of HDL-C variation is explained by known GWAS loci, pointing to undiscovered pathways, and the authors argue systems genetics and bioinformatic approaches combining genotypic and RNA-sequencing data could reveal new gene modules governing HDL metabolism relevant to disease. CETP is singled out as one of the few HDL-related genetic exceptions with a credible causal link to cardiovascular risk, embedded within a broader argument about HDL genetics rather than a CETP-focused analysis.

Read the paper (DOI)PubMed

Original abstract

Plasma levels of HDL cholesterol (HDL-C) predict the risk of cardiovascular disease at the epidemiological level, but a direct causal role for HDL in cardiovascular disease remains controversial. Studies in animal models and humans with rare monogenic disorders link only particular HDL-associated mechanisms with causality, including those mechanisms related to particle functionality rather than cholesterol content. Mendelian randomization studies indicate that most genetic variants that affect a range of pathways that increase plasma HDL-C levels are not usually associated with reduced risk of cardiovascular disease, with some exceptions, such as cholesteryl ester transfer protein variants. Furthermore, only a fraction of HDL-C variation has been explained by known loci from genome-wide association studies (GWAS), suggesting the existence of additional pathways and targets. Systems genetics can enhance our understanding of the spectrum of HDL pathways, particularly those pathways that involve new and non-obvious GWAS loci. Bioinformatic approaches can also define new molecular interactions inferred from both large-scale genotypic data and RNA sequencing data to reveal biologically meaningful gene modules and networks governing HDL metabolism with direct relevance to disease end points. Targeting these newly recognized causal networks might inform the development of novel therapeutic strategies to reduce the risk of cardiovascular disease.

geneticsHDL biology

Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.