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Mhr1p-dependent concatemeric mitochondrial DNA formation for generating yeast mitochondrial homoplasmic cells
1Cellular and Molecular Biology Laboratory, RIKEN, Saitama 351-0198, Japan.
Abstract:
Mitochondria carry many copies of mitochondrial DNA (mtDNA), but mt-alleles quickly segregate during mitotic growth through unknown mechanisms. Consequently, all mtDNA copies are often genetically homogeneous within each individual ("homoplasmic"). Our previous study suggested that tandem multimers ("concatemers") formed mainly by the Mhr1p (a yeast nuclear gene-encoded mtDNA-recombination protein)-dependent pathway are required for mtDNA partitioning into buds with concomitant monomerization. The transmission of a few randomly selected clones (as concatemers) of mtDNA into buds is a possible mechanism to establish homoplasmy. The current study provides evidence for this hypothesis as follows: the overexpression of MHR1 accelerates mt-allele-segregation in growing heteroplasmic zygotes, and mhr1-1 (recombination-deficient) causes its delay. The mt-allele-segregation rate correlates with the abundance of concatemers, which depends on Mhr1p. In G1-arrested cells, concatemeric mtDNA was labeled by [14C]thymidine at a much higher density than monomers, indicating concatemers as the immediate products of mtDNA replication, most likely in a rolling circle mode. After releasing the G1 arrest in the absence of [14C]thymidine, the monomers as the major species in growing buds of dividing cells bear a similar density of 14C as the concatemers in the mother cells, indicating that the concatemers in mother cells are the precursors of the monomers in buds.
Insights
Mitochondrial DNA (mtDNA) concatemers, produced via Mhr1p, drive rapid segregation of mtDNA alleles during cell division, establishing genetic homogeneity (homoplasmy). This process ensures efficient partitioning of mtDNA into daughter cells.
Area of Science:
- Cell Biology
- Genetics
- Mitochondrial Biology
Background:
- Mitochondrial DNA (mtDNA) exists in multiple copies per mitochondrion.
- Rapid segregation of mtDNA alleles during cell division leads to homoplasmy.
- Previous work implicated Mhr1p-dependent mtDNA concatemers in partitioning and monomerization.
Purpose of the Study:
- To investigate the role of Mhr1p and mtDNA concatemers in segregating mtDNA alleles.
- To provide evidence for the hypothesis that concatemeric mtDNA transmission establishes homoplasmy.
Main Methods:
- Overexpression of MHR1 and analysis of mhr1-1 mutants in heteroplasmic yeast zygotes.
- Quantification of mtDNA allele segregation rates.
- Radioactive labeling ([14C]thymidine) of mtDNA replication intermediates and products.
Main Results:
- MHR1 overexpression accelerated mtDNA allele segregation, while mhr1-1 mutants showed delayed segregation.
- The rate of mtDNA allele segregation correlated with the abundance of concatemers, dependent on Mhr1p.
- [14C]thymidine labeling revealed concatemers as products of mtDNA replication (likely rolling circle) and precursors to monomers in daughter cells.
Conclusions:
- Mitochondrial DNA concatemers, generated through an Mhr1p-dependent pathway, are crucial for rapid mtDNA allele segregation.
- Concatemeric mtDNA serves as the precursor for monomeric mtDNA partitioned into daughter cells, establishing homoplasmy.
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