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An In Vitro Approach to Study Mitochondrial Dysfunction: A Cybrid Model
Published on: March 9, 2022
Elimination of Mutant mtDNA by an Optimized mpTALEN Restores Differentiation Capacities of Heteroplasmic MELAS-iPSCs
Naoki Yahata1, Hiroko Boda2, Ryuji Hata1
1Department of Anatomy I, Fujita Health University School of Medicine, Toyoake, Aichi 470-1192, Japan.
Abstract:
Various mitochondrial diseases, including mitochondrial encephalopathy, lactic acidosis, and stroke-like episodes (MELAS), are associated with heteroplasmic mutations in mitochondrial DNA (mtDNA). Herein, we refined a previously generated G13513A mtDNA-targeted platinum transcription activator-like effector nuclease (G13513A-mpTALEN) to more efficiently manipulate mtDNA heteroplasmy in MELAS-induced pluripotent stem cells (iPSCs). Introduction of a nonconventional TALE array at position 6 in the mpTALEN monomer, which recognizes the sequence around the m.13513G>A position, improved the mpTALEN effect on the heteroplasmic shift. Furthermore, the reduced expression of the new Lv-mpTALEN(PKLB)/R-mpTALEN(PKR6C) pair by modifying codons in their expression vectors could suppress the reduction in the mtDNA copy number, which contributed to the rapid recovery of mtDNA in mpTALEN-applied iPSCs during subsequent culturing. Moreover, MELAS-iPSCs with a high proportion of G13513A mutant mtDNA showed unusual properties of spontaneous, embryoid body-mediated differentiation in vitro, which was relieved by decreasing the heteroplasmy level with G13513A-mpTALEN. Additionally, drug-inducible, myogenic differentiation 1 (MYOD)-transfected MELAS-iPSCs (MyoD-iPSCs) efficiently differentiated into myosin heavy chain-positive myocytes, with or without mutant mtDNA. Hence, heteroplasmic MyoD-iPSCs controlled by fine-tuned mpTALENs may contribute to a detailed analysis of the relationship between mutation load and cellular phenotypes in disease modeling.
Insights
Researchers refined a G13513A mtDNA-targeted platinum transcription activator-like effector nuclease (G13513A-mpTALEN) to efficiently reduce mitochondrial DNA (mtDNA) heteroplasmy in MELAS patient stem cells. This improved manipulation of mtDNA heteroplasmy and cell differentiation, aiding disease modeling.
Area of Science:
- Molecular Biology
- Genetics
- Stem Cell Biology
Background:
- Mitochondrial diseases like MELAS involve heteroplasmic mutations in mitochondrial DNA (mtDNA).
- Previous G13513A-mpTALEN tools showed potential but required refinement for efficiency and safety.
Purpose of the Study:
- To enhance the efficiency of manipulating mtDNA heteroplasmy using G13513A-mpTALEN in MELAS-induced pluripotent stem cells (iPSCs).
- To investigate the impact of reduced mtDNA heteroplasmy on cellular phenotypes and differentiation potential in MELAS-iPSCs.
Main Methods:
- Engineered G13513A-mpTALEN with a modified TALE array for improved targeting of the m.13513G>A mutation.
- Optimized mpTALEN expression vectors to minimize mtDNA copy number reduction and promote mtDNA recovery.
- Utilized drug-inducible MYOD transfection for controlled myogenic differentiation of MELAS-iPSCs.
Main Results:
- The refined mpTALEN demonstrated enhanced efficiency in shifting mtDNA heteroplasmy levels.
- Codon modification in expression vectors suppressed mtDNA copy number reduction, facilitating mtDNA recovery in iPSCs.
- Reduced heteroplasmy in MELAS-iPSCs alleviated abnormal spontaneous differentiation, and MyoD-iPSCs differentiated effectively.
Conclusions:
- Fine-tuned mpTALENs offer a robust tool for precise mtDNA heteroplasmy manipulation in disease modeling.
- This approach facilitates the study of genotype-phenotype relationships in mitochondrial diseases like MELAS.
- Heteroplasmic MyoD-iPSCs generated using this method are valuable for detailed cellular and disease analysis.
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