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Published on: September 14, 2019
CRISPR-Cas9 mediated knockout of NDUFS4 in human iPSCs: A model for mitochondrial complex I deficiency
Shivani Goolab1, Karin Terburgh2, Charl du Plessis2
1Bioengineering and Integrated Genomics Group, Future Productions: Chemicals Cluster, Council for Scientific and Industrial Research, Pretoria, South Africa.
Abstract:
Mitochondrial diseases, often caused by defects in complex I (CI) of the oxidative phosphorylation system, currently lack curative treatments. Human-relevant, high-throughput drug screening platforms are crucial for the discovery of effective therapeutics, with induced pluripotent stem cells (iPSCs) emerging as a valuable technology for this purpose. Here, we present a novel iPSC model of NDUFS4-related CI deficiency that displays a strong metabolic phenotype in the pluripotent state. Human iPSCs were edited using CRISPR-Cas9 to target the NDUFS4 gene, generating isogenic NDUFS4 knockout (KO) cell lines. Sanger sequencing detected heterozygous biallelic deletions, whereas no indel mutations were found in isogenic control cells. Western blotting confirmed the absence of NDUFS4 protein in KO iPSCs and CI enzyme kinetics showed a ~56 % reduction in activity compared to isogenic controls. Comprehensive metabolomic profiling revealed a distinct metabolic phenotype in NDUFS4 KO iPSCs, predominantly associated with an elevated NADH/NAD+ ratio, consistent with alterations observed in other models of mitochondrial dysfunction. Additionally, β-lapachone, a recognized NAD+ modulator, alleviated reductive stress in KO iPSCs by modifying the redox state in both the cytosol and mitochondria. Although undifferentiated iPSCs cannot fully replicate the complex cellular dynamics of the disease seen in vivo, these findings highlight the utility of iPSCs in providing a relevant metabolic milieu that can facilitate early-stage, high-throughput exploration of therapeutic strategies for mitochondrial dysfunction.
Insights
We developed a new induced pluripotent stem cell (iPSC) model for NDUFS4-related Complex I deficiency, a mitochondrial disease. This model shows metabolic changes and can help screen drugs for mitochondrial dysfunction.
Area of Science:
- Biochemistry
- Cell Biology
- Genetics
Background:
- Mitochondrial diseases, particularly Complex I (CI) deficiencies, lack effective treatments.
- Induced pluripotent stem cells (iPSCs) offer a promising platform for disease modeling and drug discovery.
- NDUFS4 gene defects are a known cause of CI deficiency.
Purpose of the Study:
- To create and characterize a novel human iPSC model of NDUFS4-related CI deficiency.
- To investigate the metabolic phenotype of these iPSCs.
- To assess the potential of iPSCs for high-throughput screening of therapeutic compounds.
Main Methods:
- CRISPR-Cas9 gene editing to generate NDUFS4 knockout (KO) iPSCs.
- Sanger sequencing and Western blotting for genetic and protein validation.
- Enzyme kinetics assays to measure CI activity.
- Metabolomic profiling to analyze cellular metabolism.
- Treatment with β-lapachone to assess therapeutic effects.
Main Results:
- Established isogenic NDUFS4 KO iPSC lines with confirmed NDUFS4 deletion and ~56% reduction in CI activity.
- Observed a distinct metabolic phenotype in KO iPSCs, including an elevated NADH/NAD+ ratio.
- Demonstrated that β-lapachone can alleviate reductive stress in the KO iPSCs.
Conclusions:
- The novel iPSC model accurately reflects key metabolic alterations of NDUFS4-related CI deficiency.
- This iPSC model provides a valuable tool for early-stage, high-throughput drug screening for mitochondrial dysfunction.
- iPSCs offer a relevant metabolic environment for exploring therapeutic strategies for mitochondrial diseases.
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