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Published on: August 28, 2018
Targeting PCSK9 With Antibodies and Gene Silencing to Reduce LDL Cholesterol
Connie B Newman1, Jonathan A Tobert2
1Department of Medicine, New York University Grossman School of Medicine, New York, NY 10016, USA.
Abstract:
The discovery of PCSK9 and its role in regulating the low-density lipoprotein (LDL) receptor, and the effect of loss-of-function mutations of its gene, identified it as a therapeutic target in 2006. Fully humanized monoclonal antibodies to PCSK9 (alirocumab and evolocumab) proved effective for lowering LDL cholesterol and subsequently for reducing atherosclerotic events in large outcome trials. Suppressing PCSK9 synthesis via gene silencing using inclisiran, a small interfering RNA, is another approach that effectively reduces LDL cholesterol, and a cardiovascular outcome trial is in progress. These treatments are given subcutaneously on a background of maximally tolerated statin treatment and are long-lasting: dosing is once or twice a month, self-administered, for alirocumab and evolocumab, and every 6 months for inclisiran, in the clinic, with an extra dose at 3 months in the initial year of therapy. These 3 agents produce mean LDL reductions of about 55% with no important adverse effects detectable to date. They are indicated in patients with atherosclerotic vascular disease or familial hypercholesterolemia who cannot achieve LDL cholesterol targets with maximally tolerated statin treatment. Such therapy can produce very low plasma LDL cholesterol and PCSK9, but there is no evidence this is harmful. Introduction into clinical practice has been impeded by economic considerations. The barrier to their use has not been scientific or medical, but rather the impact on healthcare resources. Prices have been reduced, but whether they are now cost-effective varies from country to country.
Insights
New therapies targeting PCSK9 effectively lower LDL cholesterol in patients with atherosclerotic vascular disease or familial hypercholesterolemia. These treatments, including monoclonal antibodies and gene silencing, offer significant LDL reduction with minimal adverse effects, though cost remains a barrier.
Area of Science:
- Cardiovascular Medicine
- Pharmacology
- Genetics
Background:
- Proprotein convertase subtilisin/kexin type 9 (PCSK9) regulates low-density lipoprotein (LDL) receptors.
- Loss-of-function mutations in PCSK9 identified it as a key therapeutic target for managing hypercholesterolemia.
Purpose of the Study:
- To review the efficacy and clinical application of novel PCSK9-targeting therapies.
- To assess the impact of PCSK9 inhibition on LDL cholesterol levels and cardiovascular outcomes.
Main Methods:
- Review of clinical trials evaluating monoclonal antibodies (alirocumab, evolocumab) and small interfering RNA (inclisiran).
- Analysis of subcutaneous administration, dosing frequency, and patient populations.
- Assessment of LDL cholesterol reduction and adverse event profiles.
Main Results:
- PCSK9 inhibitors (alirocumab, evolocumab, inclisiran) achieve mean LDL cholesterol reductions of approximately 55%.
- These therapies are effective in patients with atherosclerotic vascular disease or familial hypercholesterolemia not at LDL targets with statins.
- No significant adverse effects have been detected to date, and very low LDL cholesterol levels appear safe.
Conclusions:
- PCSK9-targeting therapies represent a significant advancement in managing hyperlipidemia.
- While scientifically and medically sound, widespread clinical adoption is hindered by economic factors and healthcare resource impact.
- Cost-effectiveness varies by region, necessitating careful consideration of pricing and reimbursement strategies.
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