RNA therapeutics
Lp(a) levels above 300 mg/L significantly raise cardiovascular risk, a review of Lp(a) structure, metabolism and emerging therapies (J Lipids 2020)
Original title: Lipoprotein(a) the Insurgent: A New Insight into the Structure, Function, Metabolism, Pathogenicity, and Medications Affecting Lipoprotein(a) Molecule
This review by Jawi, Frohlich and Chan traces lipoprotein(a) [Lp(a)] research from its 1960s discovery in Kåre Berg's laboratory to current understanding of its structure, metabolism and pathogenicity. Lp(a) is formed exclusively in the liver from a single copy of apolipoprotein B-100 tethered to apolipoprotein(a), with plasma levels ranging widely from under 2 to 2500 mg/L in adults; levels above 300 mg/L significantly contribute to cardiovascular disease. Advances in isoform-independent assays alongside epidemiologic, genome-wide association and Mendelian randomisation studies have established Lp(a) as the single most common independent genetically inherited causal risk factor for cardiovascular disease, elevating it from a biomarker to a therapeutic target. The review surveys current and emerging medical interventions, including second-generation antisense therapy, for high Lp(a) levels.
Original abstract
Lipoprotein(a) [Lp(a)], aka "Lp little a", was discovered in the 1960s in the lab of the Norwegian physician Kåre Berg. Since then, we have greatly improved our knowledge of lipids and cardiovascular disease (CVD). Lp(a) is an enigmatic class of lipoprotein that is exclusively formed in the liver and comprises two main components, a single copy of apolipoprotein (apo) B-100 (apo-B100) tethered to a single copy of a protein denoted as apolipoprotein(a) apo(a). Plasma levels of Lp(a) increase soon after birth to a steady concentration within a few months of life. In adults, Lp(a) levels range widely from <2 to 2500 mg/L. Evidence that elevated Lp(a) levels >300 mg/L contribute to CVD is significant. The improvement of isoform-independent assays, together with the insight from epidemiologic studies, meta-analyses, genome-wide association studies, and Mendelian randomization studies, has established Lp(a) as the single most common independent genetically inherited causal risk factor for CVD. This breakthrough elevated Lp(a) from a biomarker of atherosclerotic risk to a target of therapy. With the emergence of promising second-generation antisense therapy, we hope that we can answer the question of whether Lp(a) is ready for prime-time clinic use. In this review, we present an update on the metabolism, pathophysiology, and current/future medical interventions for high levels of Lp(a).
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Summary written by lp-a.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.