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.

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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