Genetics
Review by Koschinsky, Rosenson and colleagues explains why Lp(a) runs up to threefold higher across racial groups and 5-10% higher in women (J Am Heart Assoc 2024)
Original title: Genetics and Pathophysiological Mechanisms of Lipoprotein(a)-Associated Cardiovascular Risk
This review examines the genetic determinants and pathophysiological mechanisms behind Lp(a)-associated cardiovascular risk. Lp(a) concentration is heavily genetically determined, shaped by LPA kringle IV-2 domain copy number (apolipoprotein(a) has 10 subtypes yielding more than 40 isoform sizes), single-nucleotide polymorphisms, interleukin-1 genotypes, and loci beyond LPA such as APOE and APOH. Lp(a) runs 5% to 10% higher in women than men, and up to threefold higher in some racial and ethnic groups than others. Nongenetic factors including menopause, diet, and renal function also influence levels, and inflammation raises Lp(a) transiently via an interleukin-6 response element in the LPA promoter. The authors note that several investigational RNA-targeted Lp(a)-lowering agents have shown promise, that Lp(a) testing only requires a routine nonfasting blood draw, and provide practical guidance on when and how to test for elevated Lp(a) in clinical practice.
Original abstract
Elevated lipoprotein(a) is a genetically transmitted codominant trait that is an independent risk driver for cardiovascular disease. Lipoprotein(a) concentration is heavily influenced by genetic factors, including LPA kringle IV-2 domain size, single-nucleotide polymorphisms, and interleukin-1 genotypes. Apolipoprotein(a) is encoded by the LPA gene and contains 10 subtypes with a variable number of copies of kringle -2, resulting in >40 different apolipoprotein(a) isoform sizes. Genetic loci beyond LPA, such as APOE and APOH, have been shown to impact lipoprotein(a) levels. Lipoprotein(a) concentrations are generally 5% to 10% higher in women than men, and there is up to a 3-fold difference in median lipoprotein(a) concentrations between racial and ethnic populations. Nongenetic factors, including menopause, diet, and renal function, may also impact lipoprotein(a) concentration. Lipoprotein(a) levels are also influenced by inflammation since the LPA promoter contains an interleukin-6 response element; interleukin-6 released during the inflammatory response results in transient increases in plasma lipoprotein(a) levels. Screening can identify elevated lipoprotein(a) levels and facilitate intensive risk factor management. Several investigational, RNA-targeted agents have shown promising lipoprotein(a)-lowering effects in clinical studies, and large-scale lipoprotein(a) testing will be fundamental to identifying eligible patients should these agents become available. Lipoprotein(a) testing requires routine, nonfasting blood draws, making it convenient for patients. Herein, we discuss the genetic determinants of lipoprotein(a) levels, explore the pathophysiological mechanisms underlying the association between lipoprotein(a) and cardiovascular disease, and provide practical guidance for lipoprotein(a) testing.
Summary written by lp-a.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.