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In vivo genome and base editing of a human PCSK9 knock-in hypercholesterolemic mouse model
Alba Carreras1,2, Luna Simona Pane1, Roberto Nitsch3
1Discovery Biology, Discovery Sciences, IMED Biotech Unit, AstraZeneca, Pepparedsleden 1, Mölndal, 43 183, Gothenburg, Sweden.
Background:
Plasma concentration of low-density lipoprotein (LDL) cholesterol is a well-established risk factor for cardiovascular disease. Inhibition of proprotein convertase subtilisin/kexin type 9 (PCSK9), which regulates cholesterol homeostasis, has recently emerged as an approach to reduce cholesterol levels. The development of humanized animal models is an important step to validate and study human drug targets, and use of genome and base editing has been proposed as a mean to target disease alleles.
Results:
To address the lack of validated models to test the safety and efficacy of techniques to target human PCSK9, we generated a liver-specific human PCSK9 knock-in mouse model (hPCSK9-KI). We showed that plasma concentrations of total cholesterol were higher in hPCSK9-KI than in wildtype mice and increased with age. Treatment with evolocumab, a monoclonal antibody that targets human PCSK9, reduced cholesterol levels in hPCSK9-KI but not in wildtype mice, showing that the hypercholesterolemic phenotype was driven by overexpression of human PCSK9. CRISPR-Cas9-mediated genome editing of human PCSK9 reduced plasma levels of human and not mouse PCSK9, and in parallel reduced plasma concentrations of total cholesterol; genome editing of mouse Pcsk9 did not reduce cholesterol levels. Base editing using a guide RNA that targeted human and mouse PCSK9 reduced plasma levels of human and mouse PCSK9 and total cholesterol. In our mouse model, base editing was more precise than genome editing, and no off-target editing nor chromosomal translocations were identified.
Conclusions:
Here, we describe a humanized mouse model with liver-specific expression of human PCSK9 and a human-like hypercholesterolemia phenotype, and demonstrate that this mouse can be used to evaluate antibody and gene editing-based (genome and base editing) therapies to modulate the expression of human PCSK9 and reduce cholesterol levels. We predict that this mouse model will be used in the future to understand the efficacy and safety of novel therapeutic approaches for hypercholesterolemia.
Insights
Researchers developed a humanized mouse model to study hypercholesterolemia. This model effectively evaluated antibody and gene-editing therapies targeting proprotein convertase subtilisin/kexin type 9 (PCSK9) to lower cholesterol levels.
Area of Science:
- Cardiovascular Research
- Genetics and Genomics
- Pharmacology
Background:
- Elevated low-density lipoprotein (LDL) cholesterol is a key risk factor for cardiovascular disease.
- Proprotein convertase subtilisin/kexin type 9 (PCSK9) inhibition is a novel therapeutic strategy for reducing cholesterol.
- Humanized animal models are crucial for validating drug targets like PCSK9.
Purpose of the Study:
- To create a validated mouse model for testing therapies targeting human PCSK9.
- To assess the efficacy of antibody and gene-editing approaches in a humanized model of hypercholesterolemia.
Main Methods:
- Generated a liver-specific human PCSK9 knock-in (hPCSK9-KI) mouse model.
- Administered evolocumab (a PCSK9 inhibitor) and employed CRISPR-Cas9 genome and base editing techniques.
- Analyzed plasma cholesterol levels and assessed on-target/off-target editing efficiency.
Main Results:
- hPCSK9-KI mice exhibited elevated total cholesterol compared to wildtype mice.
- Evolocumab treatment reduced cholesterol in hPCSK9-KI mice, confirming the model's validity.
- Genome and base editing of human PCSK9 successfully lowered cholesterol; base editing demonstrated higher precision with no detected off-target effects.
Conclusions:
- A novel humanized mouse model accurately replicates human-like hypercholesterolemia.
- This model serves as a valuable platform for evaluating PCSK9-targeted therapies, including antibodies and gene editing.
- The findings support the potential of gene editing, particularly base editing, for safe and effective hypercholesterolemia treatment.
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