Related Experiment Video
Updated: Jan 28, 2026

LC-MS Analysis of Human Platelets as a Platform for Studying Mitochondrial Metabolism
Published on: April 4, 2016
Concentration of mitochondrial DNA mutations by cytoplasmic transfer from platelets to cultured mouse cells
Kaori Ishikawa1,2, Kohei Kobayashi1, Akihito Yamada1
1Faculty of Life and Environmental Sciences, University of Tsukuba, Tennodai, Tsukuba, Ibaraki, Japan.
Abstract:
Accumulation of mutations in mitochondrial DNA (mtDNA) is thought to be responsible for mitochondrial, and other, diseases and biological phenomena, such as diabetes, cancer, neurodegenerative diseases, and aging. Mouse models may elucidate the relationship between mutations in mtDNA and these abnormalities. However, because of the difficulty of mtDNA manipulation, generation of mouse models has not sufficiently progressed to enable such studies. To overcome this difficulty and to establish a source of diverse mtDNA mutations, we here generated cultured mouse cells containing mtDNA derived from an mtDNA mutator mouse that accumulates random mtDNA mutations with age. Mutation analysis of the obtained transmitochondrial cytoplasmic hybrid cells (cybrids) revealed that the cells harbored diverse mtDNA mutations occurring at a higher frequency than in mouse tissues, and exhibited severe respiration defects that would be lethal in tissues or organs. Abnormal respiratory complex formation and high stress on the mitochondrial protein quality control system appeared to be involved in these severe respiration defects. The mutation rates of the majority of highly accumulated mutations converged to either approximately 5%, 10%, or 40%, suggesting that these mutations are linked on the respective mtDNA molecules, and mtDNA in cybrid cells likely consisted of mtDNA molecules clonally expanded from the small population of introduced mtDNAs. Thus, the linked mutations in these cybrid cells cannot be evaluated individually. In addition, mtDNA mutations homologous to confirmed pathogenic mutations in human were rarely observed in our generated cybrids. However, the transmitochondrial cybrids constitute a useful tool for concentrating pathogenic mtDNA mutations and as a source of diverse mtDNA mutations to elucidate the relationship between mtDNA mutations and diseases.
Insights
Mitochondrial DNA (mtDNA) mutations drive diseases and aging. Researchers created mouse cells with diverse mtDNA mutations, revealing severe defects and offering a tool to study these links.
Area of Science:
- Mitochondrial biology
- Genetics
- Cellular pathology
Background:
- Accumulation of mutations in mitochondrial DNA (mtDNA) is implicated in various diseases, including diabetes, cancer, neurodegenerative disorders, and aging.
- Mouse models are crucial for understanding the link between mtDNA mutations and disease, but generating them is challenging due to difficulties in mtDNA manipulation.
Purpose of the Study:
- To overcome the limitations in generating mouse models with specific mtDNA mutations.
- To create a valuable resource of diverse mtDNA mutations for studying their role in disease and aging.
Main Methods:
- Generated cultured mouse cells (cybrids) containing mtDNA from an mtDNA mutator mouse, which accumulates mutations with age.
- Analyzed mutations in the generated cybrid cells to assess mutation frequency and diversity.
- Investigated cellular respiration and mitochondrial function in cybrid cells.
Main Results:
- Cybrid cells exhibited a higher frequency and diversity of mtDNA mutations compared to mouse tissues.
- Cells displayed severe respiration defects, likely lethal in vivo, linked to abnormal respiratory complex formation and stressed mitochondrial protein quality control.
- High mutation accumulations converged at specific rates (approx. 5%, 10%, 40%), suggesting linked mutations within clonally expanded mtDNA molecules.
- Homologous mutations to known human pathogenic mtDNA mutations were rarely observed.
Conclusions:
- Transmitochondrial cybrid cells are a valuable tool for concentrating and studying diverse mtDNA mutations.
- These cybrid cells can help elucidate the relationship between mtDNA mutations and various diseases and biological phenomena.
- The linked nature of mutations in these cybrids limits individual mutation analysis but provides a unique model for studying mutation clusters.
Related Concept Videos
Animal Mitochondrial Genetics
Export of Mitochondrial and Chloroplast Genes
Concentration Cells
Consider the following voltaic cell:
Mutations
Cytoplasm
Protein Folding and Misfolding
The cytoplasm is the location for several cellular processes, including protein synthesis and folding. The aqueous nature of the cytosol promotes protein folding such that the hydrophobic amino acid side chains are buried in the protein...
Cytoplasm
Protein Folding and Misfolding
The cytoplasm is the location for several cellular processes, including protein synthesis and folding. The aqueous nature of the cytosol promotes protein folding such that the hydrophobic amino acid side chains are buried in the protein...

