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A High-Throughput Luciferase Assay to Evaluate Proteolysis of the Single-Turnover Protease PCSK9
Published on: August 28, 2018
PCSK9 Biology and Its Role in Atherothrombosis
Cristina Barale1, Elena Melchionda1, Alessandro Morotti1
1Department of Clinical and Biological Sciences, Turin University, I-10043 Orbassano TO, Italy.
Abstract:
It is now about 20 years since the first case of a gain-of-function mutation involving the as-yet-unknown actor in cholesterol homeostasis, proprotein convertase subtilisin/kexin type 9 (PCSK9), was described. It was soon clear that this protein would have been of huge scientific and clinical value as a therapeutic strategy for dyslipidemia and atherosclerosis-associated cardiovascular disease (CVD) management. Indeed, PCSK9 is a serine protease belonging to the proprotein convertase family, mainly produced by the liver, and essential for metabolism of LDL particles by inhibiting LDL receptor (LDLR) recirculation to the cell surface with the consequent upregulation of LDLR-dependent LDL-C levels. Beyond its effects on LDL metabolism, several studies revealed the existence of additional roles of PCSK9 in different stages of atherosclerosis, also for its ability to target other members of the LDLR family. PCSK9 from plasma and vascular cells can contribute to the development of atherosclerotic plaque and thrombosis by promoting platelet activation, leukocyte recruitment and clot formation, also through mechanisms not related to systemic lipid changes. These results further supported the value for the potential cardiovascular benefits of therapies based on PCSK9 inhibition. Actually, the passive immunization with anti-PCSK9 antibodies, evolocumab and alirocumab, is shown to be effective in dramatically reducing the LDL-C levels and attenuating CVD. While monoclonal antibodies sequester circulating PCSK9, inclisiran, a small interfering RNA, is a new drug that inhibits PCSK9 synthesis with the important advantage, compared with PCSK9 mAbs, to preserve its pharmacodynamic effects when administrated every 6 months. Here, we will focus on the major understandings related to PCSK9, from its discovery to its role in lipoprotein metabolism, involvement in atherothrombosis and a brief excursus on approved current therapies used to inhibit its action.
Insights
Proprotein convertase subtilisin/kexin type 9 (PCSK9) plays a key role in cholesterol homeostasis and cardiovascular disease. Inhibiting PCSK9, through antibodies or RNA interference, effectively lowers LDL-C and offers cardiovascular benefits.
Area of Science:
- Biochemistry
- Cardiovascular Medicine
- Molecular Biology
Background:
- Proprotein convertase subtilisin/kexin type 9 (PCSK9) is crucial for cholesterol homeostasis.
- Gain-of-function mutations in PCSK9 were identified ~20 years ago, highlighting its therapeutic potential.
- PCSK9 regulates LDL receptor (LDLR) recycling, impacting LDL-C levels and cardiovascular disease (CVD).
Purpose of the Study:
- To review the discovery and multifaceted roles of PCSK9.
- To explore PCSK9's involvement in lipoprotein metabolism and atherothrombosis.
- To discuss current therapeutic strategies targeting PCSK9 for CVD management.
Main Methods:
- Literature review of PCSK9 research.
- Analysis of PCSK9's function in lipid metabolism.
- Examination of PCSK9's role in atherothrombosis and platelet activation.
Main Results:
- PCSK9 inhibition dramatically reduces LDL-C levels.
- PCSK9 contributes to atherosclerosis beyond lipid changes, affecting thrombosis.
- Anti-PCSK9 therapies, including monoclonal antibodies and RNA interference, demonstrate significant CVD risk reduction.
Conclusions:
- PCSK9 is a critical target for managing dyslipidemia and CVD.
- Therapies inhibiting PCSK9, such as evolocumab, alirocumab, and inclisiran, are effective.
- Targeting PCSK9 offers substantial cardiovascular benefits by modulating lipid levels and atherothrombotic processes.
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