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Updated: Mar 26, 2026

Genotyping Single Nucleotide Polymorphisms in the Mitochondrial Genome by Pyrosequencing
Published on: February 10, 2023
Segregation of Naturally Occurring Mitochondrial DNA Variants in a Mini-Pig Model
Gael Cagnone1, Te-Sha Tsai1, Kanokwan Srirattana1
1Centre for Genetic Diseases, Hudson Institute of Medical Research, Clayton, Victoria 3168, Australia Department of Molecular and Translational Science, Centre for Genetic Diseases, Clayton, Victoria 3168, Australia.
Abstract:
The maternally inherited mitochondrial genome (mtDNA) is present in multimeric form within cells and harbors sequence variants (heteroplasmy). While a single mtDNA variant at high load can cause disease, naturally occurring variants likely persist at low levels across generations of healthy populations. To determine how naturally occurring variants are segregated and transmitted, we generated a mini-pig model, which originates from the same maternal ancestor. Following next-generation sequencing, we identified a series of low-level mtDNA variants in blood samples from the female founder and her daughters. Four variants, ranging from 3% to 20%, were selected for validation by high-resolution melting analysis in 12 tissues from 31 animals across three generations. All four variants were maintained in the offspring, but variant load fluctuated significantly across the generations in several tissues, with sex-specific differences in heart and liver. Moreover, variant load was persistently reduced in high-respiratory organs (heart, brain, diaphragm, and muscle), which correlated significantly with higher mtDNA copy number. However, oocytes showed increased heterogeneity in variant load, which correlated with increased mtDNA copy number during in vitro maturation. Altogether, these outcomes show that naturally occurring mtDNA variants segregate and are maintained in a tissue-specific manner across generations. This segregation likely involves the maintenance of selective mtDNA variants during organogenesis, which can be differentially regulated in oocytes and preimplantation embryos during maturation.
Insights
Naturally occurring mitochondrial DNA (mtDNA) variants are maintained across generations in a tissue-specific manner. Their load fluctuates, influenced by mtDNA copy number and sex, especially in oocytes.
Area of Science:
- Genetics
- Cell Biology
- Genomics
Background:
- Mitochondrial DNA (mtDNA) variants can cause disease but also exist at low levels in healthy populations.
- Understanding the transmission and segregation of these naturally occurring variants is crucial.
Purpose of the Study:
- To investigate the segregation and transmission patterns of naturally occurring low-level mtDNA variants across generations.
- To establish a mini-pig model for studying mtDNA variant dynamics.
Main Methods:
- Next-generation sequencing to identify mtDNA variants in a mini-pig family across three generations.
- High-resolution melting analysis to validate variant loads in 12 tissues.
- Correlation analysis with mtDNA copy number and sex.
Main Results:
- Low-level mtDNA variants were identified and maintained across generations.
- Variant loads fluctuated significantly across generations and tissues, with sex-specific differences in heart and liver.
- Reduced variant loads in respiratory organs correlated with higher mtDNA copy number.
- Oocytes exhibited increased variant heterogeneity linked to mtDNA copy number during maturation.
Conclusions:
- Naturally occurring mtDNA variants segregate and are maintained in a tissue-specific manner.
- Selective variant maintenance during organogenesis and differential regulation in oocytes/embryos likely play a role.

