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Targeted elimination of mutant mitochondrial DNA in MELAS-iPSCs by mitoTALENs
Yi Yang1, Han Wu2, Xiangjin Kang1
1Key Laboratory for Major Obstetric Diseases of Guangdong Province, Key Laboratory of Reproduction and Genetics of Guangdong Higher Education Institutes, The Third Affiliated Hospital of Guangzhou Medical University, Guangzhou, 510150, China.
Abstract:
Mitochondrial diseases are maternally inherited heterogeneous disorders that are primarily caused by mitochondrial DNA (mtDNA) mutations. Depending on the ratio of mutant to wild-type mtDNA, known as heteroplasmy, mitochondrial defects can result in a wide spectrum of clinical manifestations. Mitochondria-targeted endonucleases provide an alternative avenue for treating mitochondrial disorders via targeted destruction of the mutant mtDNA and induction of heteroplasmic shifting. Here, we generated mitochondrial disease patient-specific induced pluripotent stem cells (MiPSCs) that harbored a high proportion of m.3243A>G mtDNA mutations and caused mitochondrial encephalomyopathy and stroke-like episodes (MELAS). We engineered mitochondrial-targeted transcription activator-like effector nucleases (mitoTALENs) and successfully eliminated the m.3243A>G mutation in MiPSCs. Off-target mutagenesis was not detected in the targeted MiPSC clones. Utilizing a dual fluorescence iPSC reporter cell line expressing a 3243G mutant mtDNA sequence in the nuclear genome, mitoTALENs displayed a significantly limited ability to target the nuclear genome compared with nuclear-localized TALENs. Moreover, genetically rescued MiPSCs displayed normal mitochondrial respiration and energy production. Moreover, neuronal progenitor cells differentiated from the rescued MiPSCs also demonstrated normal metabolic profiles. Furthermore, we successfully achieved reduction in the human m.3243A>G mtDNA mutation in porcine oocytes via injection of mitoTALEN mRNA. Our study shows the great potential for using mitoTALENs for specific targeting of mutant mtDNA both in iPSCs and mammalian oocytes, which not only provides a new avenue for studying mitochondrial biology and disease but also suggests a potential therapeutic approach for the treatment of mitochondrial disease, as well as the prevention of germline transmission of mutant mtDNA.
Insights
Mitochondrial-targeted TALENs successfully eliminated harmful mtDNA mutations in patient stem cells and oocytes. This offers a promising therapeutic strategy for mitochondrial diseases and preventing their transmission.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Mitochondrial diseases stem from mitochondrial DNA (mtDNA) mutations, leading to varied clinical symptoms based on heteroplasmy.
- Targeting mutant mtDNA with mitochondria-targeted endonucleases offers a potential therapeutic approach.
Purpose of the Study:
- To engineer and assess the efficacy of mitochondria-targeted transcription activator-like effector nucleases (mitoTALENs) for treating mitochondrial DNA mutations.
- To evaluate the safety and effectiveness of mitoTALENs in patient-derived cells and mammalian oocytes.
Main Methods:
- Generated patient-specific induced pluripotent stem cells (MiPSCs) with the m.3243A>G mtDNA mutation causing MELAS.
- Engineered mitoTALENs to target and eliminate the m.3243A>G mutation in MiPSCs.
- Assessed off-target effects, nuclear genome targeting, and functional recovery of mitochondrial respiration and energy production.
Main Results:
- Successfully eliminated the m.3243A>G mtDNA mutation in MiPSCs without detectable off-target mutagenesis.
- Demonstrated limited nuclear genome targeting by mitoTALENs compared to nuclear TALENs.
- Restored normal mitochondrial respiration and energy production in rescued MiPSCs and their differentiated neuronal progenitor cells.
- Reduced the m.3243A>G mtDNA mutation in porcine oocytes via mitoTALEN mRNA injection.
Conclusions:
- mitoTALENs show significant potential for specifically targeting mutant mtDNA in induced pluripotent stem cells and mammalian oocytes.
- This technology provides a novel tool for studying mitochondrial diseases and suggests a potential therapeutic strategy for treatment and prevention of germline transmission.
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