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Updated: May 12, 2026

Modeling Mitochondrial Disease Using Brain Organoids: A Focus on Mitochondrial Encephalomyopathy, Lactic Acidosis, and Stroke-like Episodes
Published on: October 10, 2025
Disease-causing mitochondrial heteroplasmy segregated within induced pluripotent stem cell clones derived from a
Clifford D L Folmes1, Almudena Martinez-Fernandez, Ester Perales-Clemente
1Department of Medicine, Mayo Clinic, Rochester, MN, USA.
Abstract:
Mitochondrial diseases display pathological phenotypes according to the mixture of mutant versus wild-type mitochondrial DNA (mtDNA), known as heteroplasmy. We herein examined the impact of nuclear reprogramming and clonal isolation of induced pluripotent stem cells (iPSC) on mitochondrial heteroplasmy. Patient-derived dermal fibroblasts with a prototypical mitochondrial deficiency diagnosed as mitochondrial encephalomyopathy with lactic acidosis and stroke-like episodes (MELAS) demonstrated mitochondrial dysfunction with reduced oxidative reserve due to heteroplasmy at position G13513A in the ND5 subunit of complex I. Bioengineered iPSC clones acquired pluripotency with multilineage differentiation capacity and demonstrated reduction in mitochondrial density and oxygen consumption distinguishing them from the somatic source. Consistent with the cellular mosaicism of the original patient-derived fibroblasts, the MELAS-iPSC clones contained a similar range of mtDNA heteroplasmy of the disease-causing mutation with identical profiles in the remaining mtDNA. High-heteroplasmy iPSC clones were used to demonstrate that extended stem cell passaging was sufficient to purge mutant mtDNA, resulting in isogenic iPSC subclones with various degrees of disease-causing genotypes. On comparative differentiation of iPSC clones, improved cardiogenic yield was associated with iPSC clones containing lower heteroplasmy compared with isogenic clones with high heteroplasmy. Thus, mtDNA heteroplasmic segregation within patient-derived stem cell lines enables direct comparison of genotype/phenotype relationships in progenitor cells and lineage-restricted progeny, and indicates that cell fate decisions are regulated as a function of mtDNA mutation load. The novel nuclear reprogramming-based model system introduces a disease-in-a-dish tool to examine the impact of mutant genotypes for MELAS patients in bioengineered tissues and a cellular probe for molecular features of individual mitochondrial diseases.
Insights
Nuclear reprogramming of patient cells reduces mitochondrial DNA mutations. This stem cell model allows studying mitochondrial diseases like MELAS and developing new therapies.
Area of Science:
- Cell Biology
- Genetics
- Biotechnology
Background:
- Mitochondrial diseases arise from mutations in mitochondrial DNA (mtDNA), leading to varied phenotypes based on heteroplasmy levels.
- Mitochondrial encephalomyopathy with lactic acidosis and stroke-like episodes (MELAS) is a prototypical mitochondrial deficiency caused by specific mtDNA mutations.
Purpose of the Study:
- To investigate the effect of nuclear reprogramming and induced pluripotent stem cell (iPSC) clonal isolation on mitochondrial heteroplasmy.
- To establish a disease-in-a-dish model for studying genotype-phenotype relationships in mitochondrial diseases.
Main Methods:
- Patient-derived fibroblasts with MELAS mutation underwent nuclear reprogramming to generate iPSC clones.
- iPSC clones were characterized for pluripotency, differentiation capacity, and mtDNA heteroplasmy levels.
- Extended passaging of iPSC clones was used to induce mutant mtDNA purging and generate isogenic subclones.
Main Results:
- Generated iPSC clones maintained pluripotency and multilineage differentiation capacity.
- iPSC clones exhibited reduced mitochondrial density and oxygen consumption compared to parental fibroblasts.
- Extended iPSC passaging led to the purging of mutant mtDNA, creating isogenic subclones with varying heteroplasmy.
- Lower heteroplasmy in iPSC clones correlated with improved cardiogenic differentiation yield.
Conclusions:
- Nuclear reprogramming and iPSC technology can modulate mitochondrial heteroplasmy.
- mtDNA heteroplasmic segregation in iPSC lines facilitates genotype-phenotype correlation studies.
- This novel stem cell model provides a platform for investigating MELAS and other mitochondrial diseases in engineered tissues.
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