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Updated: Apr 16, 2026

A High-Throughput Luciferase Assay to Evaluate Proteolysis of the Single-Turnover Protease PCSK9
Published on: August 28, 2018
RNA therapeutics inactivate PCSK9 by inducing a unique intracellular retention form
Cristina S J Rocha1, Oscar P B Wiklander1, Lilian Larsson2
1Division Clinical Research Center, Department of Laboratory Medicine, Karolinska Institutet, Karolinska University Hospital, Huddinge, Stockholm, Sweden.
Insights
This study introduces a novel RNA therapeutic approach using splice-switching oligonucleotides (SSOs) to inactivate proprotein convertase subtilisin/kexin type 9 (PCSK9). This method effectively lowers cholesterol by modulating PCSK9 activity and increasing LDL receptor levels.
Area of Science:
- Biochemistry
- Genetics
- Pharmacology
Background:
- Hypercholesterolemia, characterized by high LDL-C, poses treatment challenges, especially for severe cases.
- Proprotein convertase subtilisin/kexin type 9 (PCSK9) is a key regulator of cholesterol metabolism and a promising therapeutic target.
- Existing therapies are insufficient for all patients, necessitating novel approaches.
Purpose of the Study:
- To develop a new RNA therapeutic strategy for hypercholesterolemia by targeting PCSK9.
- To inactivate PCSK9 by inducing a shift from its active splice form to a natural, inactive variant using splice-switching oligonucleotides (SSOs).
Main Methods:
- Development of SSOs to modulate the splice pattern of human PCSK9 pre-mRNA.
- In vitro studies using Huh7 and HepG2 cell lines to assess changes in PCSK9 splice variants, mRNA, and protein levels.
- In vivo studies in a mouse reporter system to evaluate the therapeutic potential of SSO treatment.
Main Results:
- SSOs successfully increased the desired inactive PCSK9 splice form at both mRNA and protein levels in cell lines.
- A concomitant increase in low-density lipoprotein receptor (LDLR) protein levels was observed, confirming the system's specificity and efficiency.
- In vivo studies demonstrated full conversion to the target splice form in a reporter system upon SSO administration.
Conclusions:
- PCSK9 activity can be effectively modulated through splice-switching using an RNA therapeutic approach.
- This method offers a physiological means to regulate cholesterol metabolism by controlling PCSK9 and influencing LDL receptor availability.
- The development of SSOs targeting PCSK9 represents a promising therapeutic strategy for managing hypercholesterolemia.
Abstract:
Hypercholesterolemia is a medical condition often characterized by high levels of low-density lipoprotein cholesterol (LDL-C) in the blood. Despite the available therapies, not all patients show sufficient responses, especially those with very high levels of LDL-C or those with familial hypercholesterolemia. Regulation of plasma cholesterol levels is very complex and several proteins are involved (both receptors and enzymes). From these, the proprotein convertase subtilisin/kexin type 9 (PCSK9) has emerged as a promising pharmacologic target. The objective of this work is to develop a new approach to inactivate PCSK9 by splice-switching oligonucleotides (SSOs), converting the normal splice form to a natural, less abundant and inactive, splice variant. For this purpose, a new RNA therapeutic approach for hypercholesterolemia based on SSOs was developed for modulation of the splice pattern of human PCSK9 pre-mRNA. Our results show an increase of the selected splice form at both the mRNA and protein level when compared to non-treated Huh7 and HepG2 cell lines, with concomitant increase of the protein level of the low-density lipoprotein receptor (LDLR) demonstrating the specificity and efficiency of the system. In vivo, full conversion to the splice form was achieved in a reporter system when mice were treated with the specific oligonucleotide, thus further indicating the therapeutic potential of the approach. In conclusion, PCSK9 activity can be modulated by splice-switching through an RNA therapeutic approach. The tuning of the natural active to non-active isoforms represents a physiological way of regulating the cholesterol metabolism, by controlling the amount of LDL receptor available and the rate of LDL-cholesterol clearance.
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