Related Experiment Video
Updated: Jul 15, 2025

Cell-free Biochemical Fluorometric Enzymatic Assay for High-throughput Measurement of Lipid Peroxidation in High Density Lipoprotein
Published on: October 12, 2017
Lipoprotein(a) as a Risk Factor for Cardiovascular Diseases: Pathophysiology and Treatment Perspectives
Pierandrea Vinci1, Filippo Giorgio Di Girolamo1,2, Emiliano Panizon1
1Clinica Medica, Cattinara Hospital, Department of Medical Surgical and Health Science, University of Trieste, 34149 Trieste, Italy.
Insights
High lipoprotein(a) [Lp(a)] levels are an independent risk factor for cardiovascular disease, contributing to residual risk. This review explores Lp(a) pathophysiology and effective lowering strategies, including novel therapies.
Area of Science:
- Cardiovascular Medicine
- Genetics
- Pharmacology
Background:
- Cardiovascular disease (CVD) remains a leading cause of mortality despite advances in prevention and treatment.
- Elevated lipoprotein(a) [Lp(a)] is an independent risk factor for CVD, contributing to residual risk even with controlled LDL-C.
- Lp(a) is an LDL-like particle with a unique apolipoprotein(a) [Apo(a)] structure, exhibiting significant inter-individual and ethnic variations in plasma concentrations.
Purpose of the Study:
- To provide an update on the current understanding of Lp(a) pathophysiological mechanisms.
- To review the most effective strategies for lowering Lp(a) levels.
- To highlight emerging alternative therapies for managing hyperlipoproteinemia(a) and residual cardiovascular risk.
Main Methods:
- Literature review focusing on Lp(a) pathophysiology and lipid-lowering treatments.
- Analysis of existing and emerging therapeutic strategies targeting Lp(a).
- Evaluation of the efficacy and tolerability of various Lp(a) reduction methods.
Main Results:
- High Lp(a) levels are strongly linked to increased risk of ischemic CVD, aortic valve stenosis, and heart failure.
- Standard lipid-lowering treatments are largely ineffective for reducing Lp(a).
- Emerging therapies like PCSK9 inhibitors and antisense oligonucleotides show promise, with apheresis being the most effective current treatment.
Conclusions:
- Effective management of hyperlipoproteinemia(a) is crucial for controlling residual cardiovascular risk.
- Novel therapeutic approaches targeting Lp(a) are essential due to the limitations of current treatments.
- Further research into Lp(a) lowering strategies can significantly improve patient outcomes in cardiovascular disease.
Abstract:
Cardiovascular disease (CVD) is still a leading cause of morbidity and mortality, despite all the progress achieved as regards to both prevention and treatment. Having high levels of lipoprotein(a) [Lp(a)] is a risk factor for cardiovascular disease that operates independently. It can increase the risk of developing cardiovascular disease even when LDL cholesterol (LDL-C) levels are within the recommended range, which is referred to as residual cardiovascular risk. Lp(a) is an LDL-like particle present in human plasma, in which a large plasminogen-like glycoprotein, apolipoprotein(a) [Apo(a)], is covalently bound to Apo B100 via one disulfide bridge. Apo(a) contains one plasminogen-like kringle V structure, a variable number of plasminogen-like kringle IV structures (types 1-10), and one inactive protease region. There is a large inter-individual variation of plasma concentrations of Lp(a), mainly ascribable to genetic variants in the Lp(a) gene: in the general po-pulation, Lp(a) levels can range from <1 mg/dL to >1000 mg/dL. Concentrations also vary between different ethnicities. Lp(a) has been established as one of the risk factors that play an important role in the development of atherosclerotic plaque. Indeed, high concentrations of Lp(a) have been related to a greater risk of ischemic CVD, aortic valve stenosis, and heart failure. The threshold value has been set at 50 mg/dL, but the risk may increase already at levels above 30 mg/dL. Although there is a well-established and strong link between high Lp(a) levels and coronary as well as cerebrovascular disease, the evidence regarding incident peripheral arterial disease and carotid atherosclerosis is not as conclusive. Because lifestyle changes and standard lipid-lowering treatments, such as statins, niacin, and cholesteryl ester transfer protein inhibitors, are not highly effective in reducing Lp(a) levels, there is increased interest in developing new drugs that can address this issue. PCSK9 inhibitors seem to be capable of reducing Lp(a) levels by 25-30%. Mipomersen decreases Lp(a) levels by 25-40%, but its use is burdened with important side effects. At the current time, the most effective and tolerated treatment for patients with a high Lp(a) plasma level is apheresis, while antisense oligonucleotides, small interfering RNAs, and microRNAs, which reduce Lp(a) levels by targeting RNA molecules and regulating gene expression as well as protein production levels, are the most widely explored and promising perspectives. The aim of this review is to provide an update on the current state of the art with regard to Lp(a) pathophysiological mechanisms, focusing on the most effective strategies for lowering Lp(a), including new emerging alternative therapies. The purpose of this manuscript is to improve the management of hyperlipoproteinemia(a) in order to achieve better control of the residual cardiovascular risk, which remains unacceptably high.
Related Concept Videos
Atherosclerosis I: Introduction
Coronary Artery Disease I: Introduction
Atherosclerosis III: Management
Peripheral Artery Disease I: Introduction
Coronary Artery Disease IV: Preventive Measures
Lipid-Lowering Drugs: Statins and Miscellaneous Agents

