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PCSK9 inhibition

Imaging confirms Lp(a) drives high-risk coronary plaque features, from lipid-rich cores to thin fibrous caps, review synthesises (Rev Cardiovasc Med 2025)

Original title: Lipoprotein(a) and High-Risk Coronary Plaques: Mechanisms, Characteristics, and Emerging Therapeutic Strategies

Rev Cardiovasc Med · · 6

Fang S, Deng C, Zhao R

This review integrates genetic, mechanistic and imaging evidence on Lp(a)'s role in forming high-risk coronary plaques (HRPs). Elevated Lp(a) promotes lipid accumulation, vascular inflammation and plaque instability, largely through oxidised phospholipids that drive monocyte adhesion and foam cell formation, with LPA gene variants established as major determinants of Lp(a) levels. Intravascular imaging (optical coherence tomography, intravascular ultrasound) and coronary CT angiography have confirmed strong correlations between elevated Lp(a) and greater plaque burden, lipid-rich necrotic cores and thin fibrous caps, and the review extends this to systemic atherosclerosis including peripheral artery disease, cerebrovascular disease and calcific aortic stenosis. It notes that conventional lipid-lowering therapies barely touch Lp(a), while PCSK9 inhibitors and RNA-targeted agents offer promising routes to mitigating Lp(a)-mediated plaque risk. A synthesis rather than new data, aimed at informing precision-targeted prevention.

Read the paper (DOI)PubMed

Original abstract

Lipoprotein(a) (Lp(a)) is an established independent risk factor for atherosclerotic cardiovascular disease, particularly in the development of high-risk coronary plaques (HRPs). Elevated Lp(a) contributes to lipid accumulation, vascular inflammation, and plaque instability, primarily through oxidized phospholipids that promote monocyte adhesion and foam cell formation. Genetic studies have identified variants in the LPA gene as major determinants of Lp(a) levels, with higher concentrations consistently associated with adverse cardiovascular outcomes. Intravascular imaging techniques, such as optical coherence tomography and intravascular ultrasound, along with coronary computed tomography angiography (CCTA), have confirmed strong correlations between elevated Lp(a) and increased plaque burden, lipid-rich necrotic cores, and thin fibrous caps. In addition to coronary involvement, Lp(a) is implicated in systemic atherosclerosis, contributing to peripheral artery disease, cerebrovascular disease, and calcific aortic stenosis. Although conventional lipid-lowering therapies exert minimal effects on Lp(a), novel treatments such as proprotein convertase subtilisin/kexin type 9 inhibitors and RNA-targeted agents offer promising approaches to mitigating Lp(a)-mediated risk. This review summarizes current insights into the pathophysiological role of Lp(a) in HRP formation and progression, integrating evidence from genetic, mechanistic, and imaging studies, while highlighting emerging therapeutic strategies. Nonetheless, continued research is essential to enhance our understanding of Lp(a)-driven plaque vulnerability and to inform precision-targeted cardiovascular prevention.

mechanismsPCSK9 inhibitionplaque imaging

Summary written by lp-a.org from the published abstract; figures as published. Page updated 17 August 2026. Methods.