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Evidence from human oocytes for a genetic bottleneck in an mtDNA disease
D R Marchington1, V Macaulay, G M Hartshorne
1Department of Paediatrics, University of Oxford, United Kingdom.
Abstract:
We have examined oocytes from a patient with Kearn-Sayre syndrome caused by mtDNA rearrangements. In mtDNA diseases, mutant and wild-type mtDNA frequently coexist in affected individuals (the condition of heteroplasmy). The proportion of mutant mtDNA transmitted from mother to offspring is variable because of a genetic bottleneck, and the "dose" of mutant mtDNA received influences the severity of the phenotype. The feasibility of prenatal diagnosis is critically dependent on the nature and timing of this bottleneck. Significant levels of rearranged mtDNA were detectable in the majority of the patient's oocytes, by use of multiplex PCR, with wide variation, in the levels of mutant and wild-type molecules, between individual oocytes. We also used length variation in a homopolymeric C tract, which is often heteroplasmic in normal controls, to identify founder subpopulations of mtDNAs in this patient's oocytes. We present direct evidence that the number of segregating units (n) is three to five orders of magnitude less than the number of mitochondria in the human female oocyte. In some cases, the best estimate of n may correspond to a single mitochondrion, if it is assumed that intergenerational transmission of mtDNA can be treated as a single sampling event. The bottleneck appears to contribute a major component of the variable transmission from mother to oocyte, in this patient and in a control. That this bottleneck had occurred by the time that oocytes were mature advances the prospects for prenatal diagnosis of mtDNA diseases.
Insights
Mitochondrial DNA (mtDNA) diseases like Kearn-Sayre syndrome show variable inheritance due to a genetic bottleneck in oocytes. This bottleneck, occurring early in oocyte maturation, impacts prenatal diagnosis feasibility for mtDNA disorders.
Area of Science:
- Genetics
- Cell Biology
- Reproductive Medicine
Background:
- Mitochondrial DNA (mtDNA) diseases, such as Kearn-Sayre syndrome, arise from mutations in the mitochondrial genome.
- Heteroplasmy, the coexistence of mutant and wild-type mtDNA, is common in affected individuals.
- Variable transmission of mutant mtDNA from mother to offspring is influenced by a genetic bottleneck during oogenesis.
Observation:
- Analysis of oocytes from a Kearn-Sayre syndrome patient revealed significant levels of rearranged mtDNA.
- Multiplex PCR detected wide variations in mutant and wild-type mtDNA levels between individual oocytes.
- Length variation in a homopolymeric C tract identified founder mtDNA subpopulations.
Findings:
- The number of segregating mtDNA units (n) is significantly lower than the total number of mitochondria in human oocytes, potentially as low as one.
- The genetic bottleneck in mtDNA transmission occurs early, by the time oocytes are mature.
- This bottleneck is a major factor in the variable intergenerational transmission of mtDNA.
Implications:
- Understanding the timing and nature of the mtDNA bottleneck is crucial for assessing prenatal diagnosis feasibility.
- Early occurrence of the bottleneck advances prospects for prenatal diagnosis of mitochondrial DNA diseases.
- Direct evidence on the mtDNA bottleneck provides insights into the inheritance patterns of mitochondrial disorders.