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Published on: November 10, 2017
Lowering of Lipoprotein(a) with Olpasiran
Chelsea Tweneboah1, Gurleen Kaur2
1Department of Medicine, Stony Brook University Hospital, Stony Brook, NY, United States of America.
Insights
Elevated lipoprotein(a) [Lp(a)] increases cardiovascular risk. Emerging therapies like Olpasiran, a small interfering RNA, show promise in significantly reducing Lp(a) levels, offering a new target for treatment.
Area of Science:
- Cardiology
- Pharmacology
- Genetics
Background:
- Elevated lipoprotein(a) [Lp(a)] is a significant risk factor for Atherosclerotic Cardiovascular Disease (ASCVD) and aortic stenosis.
- Conventional lipid-lowering therapies, including statins and ezetimibe, are ineffective at reducing Lp(a) levels.
- PCSK9 inhibitors offer a modest reduction in Lp(a), but their clinical impact remains unclear.
Purpose of the Study:
- To review the pharmacological properties and clinical efficacy of Olpasiran, a novel siRNA therapy targeting Lp(a).
- To contextualize Olpasiran within the evolving therapeutic landscape for managing elevated Lp(a).
Main Methods:
- Review of clinical trial data, focusing on the OCEAN(a)-DOSE trial for Olpasiran.
- Analysis of Olpasiran's mechanism of action, involving apo(a) mRNA degradation.
- Comparison with other emerging Lp(a)-lowering agents like Pelacarsen and Lepodisiran.
Main Results:
- Olpasiran demonstrated over 95% reduction in Lp(a) levels in patients with established ASCVD and elevated Lp(a).
- The study highlights the potential of inhibiting apo(a) synthesis as a therapeutic strategy.
- Phase 3 outcomes trials are ongoing to further evaluate Olpasiran's efficacy and safety.
Conclusions:
- Olpasiran represents a promising therapeutic agent for significantly lowering Lp(a) and potentially reducing residual cardiovascular risk.
- Targeting apo(a) synthesis offers a novel approach to managing hyperlipoproteinemia(a).
- Further research and clinical trials are essential to establish Olpasiran's role in ASCVD management.
Abstract:
Elevated lipoprotein(a) [Lp(a)] is associated with an increased risk of aortic stenosis and Atherosclerotic Cardiovascular Disease (ASCVD), including myocardial infarction. Therefore, Lp(a) has emerged as a potential target for reducing residual cardiovascular risk. Conventional lipid-lowering interventions, including lifestyle modifications such as diet and exercise and statin therapies, have not been shown to effectively reduce Lp(a) levels. Ezetimibe, which inhibits cholesterol absorption and can reduce LDL-C, does not significantly affect Lp(a) levels, even when used in combination with statins. PCSK9 inhibitors have been found to reduce Lp(a) levels but to a lesser extent than their effect on LDL-C, and the clinical significance of the 15- 20% reduction in Lp(a) they offer is not entirely clear. Emerging therapies to lower Lp(a) focus on inhibiting apo(a) synthesis. One such agent is Olpasiran, a small interfering RNA (siRNA) that degrades apo(a) mRNA, preventing subsequent production of the protein. Its efficacy was studied in the OCEAN(a)-DOSE trial that included patients with established ASCVD and Lp(a) > 150 nmol/L and demonstrated greater than 95% reduction in Lp(a). A phase 3 outcomes trial is currently underway. In this review article, we delve further into lowering of Lp(a) with Olpasiran by detailing its pharmacological properties, its efficacy based on data from clinical trials, and ongoing research. The study also contextualizes it within the broader therapeutic landscape alongside other agents targeting Lp(a), such as Pelacarsen and Lepodisiran.
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