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New drugs like apoB antisense, MTP and CETP inhibitors could finally test whether lowering Lp(a) helps, a review on when to measure Lp(a) (Eur Heart J 2013)

Original title: When should we measure lipoprotein (a)?

Eur Heart J · · 5

Kostner KM, März W, Kostner GM

This review by Kostner, März and Kostner examines when to measure Lp(a), given epidemiological and genetic evidence for a causal, LDL- and HDL-independent relationship between elevated Lp(a) and cardiovascular disease. Lp(a) atherogenicity involves interference with the fibrinolytic system, affinity for secretory phospholipase A2, binding to extracellular matrix glycoproteins, and interaction with macrophage scavenger receptors, while apo(a) expression appears inhibited by farnesoid X receptor ligands. Despite persistent gaps in understanding Lp(a) function, biosynthesis and catabolism, new therapeutic classes with significant Lp(a)-lowering effects, apoB antisense oligonucleotides, microsomal triglyceride transfer protein inhibitors, CETP inhibitors, and PCSK9 inhibitors, are in trials. Scientific societies remain cautious about recommending routine Lp(a) measurement, given the lack of intervention trials proving that lowering Lp(a) reduces cardiovascular endpoints, limited effective medications, variable Lp(a) levels across ethnic groups, and measurement challenges; the authors present their view on when to measure Lp(a) and how to manage elevated levels in moderate- and high-risk individuals.

Read the paper (DOI)PubMed

Original abstract

Recently published epidemiological and genetic studies strongly suggest a causal relationship of elevated concentrations of lipoprotein (a) [Lp(a)] with cardiovascular disease (CVD), independent of low-density lipoproteins (LDLs), reduced high density lipoproteins (HDL), and other traditional CVD risk factors. The atherogenicity of Lp(a) at a molecular and cellular level is caused by interference with the fibrinolytic system, the affinity to secretory phospholipase A2, the interaction with extracellular matrix glycoproteins, and the binding to scavenger receptors on macrophages. Lipoprotein (a) plasma concentrations correlate significantly with the synthetic rate of apo(a) and recent studies demonstrate that apo(a) expression is inhibited by ligands for farnesoid X receptor. Numerous gaps in our knowledge on Lp(a) function, biosynthesis, and the site of catabolism still exist. Nevertheless, new classes of therapeutic agents that have a significant Lp(a)-lowering effect such as apoB antisense oligonucleotides, microsomal triglyceride transfer protein inhibitors, cholesterol ester transfer protein inhibitors, and PCSK-9 inhibitors are currently in trials. Consensus reports of scientific societies are still prudent in recommending the measurement of Lp(a) routinely for assessing CVD risk. This is mainly caused by the lack of definite intervention studies demonstrating that lowering Lp(a) reduces hard CVD endpoints, a lack of effective medications for lowering Lp(a), the highly variable Lp(a) concentrations among different ethnic groups and the challenges associated with Lp(a) measurement. Here, we present our view on when to measure Lp(a) and how to deal with elevated Lp(a) levels in moderate and high-risk individuals.

CETP inhibitionmechanismsPCSK9 inhibitionRNA therapeutics

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