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A nuclear mutation reversing a biased transmission of yeast mitochondrial DNA
1Department of Genetics, University of Washington, Seattle 98195.
Abstract:
The highly biased transmission of p- mitochondrial DNA that occurs in hypersuppressive matings between p- and p+ cells of the yeast Saccharomyces cerevisiae is thought to be a consequence of the replication advantage of the p- mtDNA. A nuclear gene, MGT1, that is required for this displacement of p+ mtDNA from zygotic clones has been identified through mutation. When one haploid parent carries the mgt1 allele, transmission of p- mtDNA is substantially reduced. When both haploid parents carry the mgt1 allele, p- mtDNA is essentially eliminated from the zygotic progeny. Thus in the absence of the MGT1 gene there is a switch in the transmission bias; p+ mtDNA rather than the hypersuppressive p- mtDNA is inherited by most zygotic clones. In contrast to its semi-dominant behavior in haploid matings, mgt1 behaves as a recessive allele in diploid matings since the p+ genome in MGT1/mgt1 diploids is efficiently displaced when mated with a MGT1/mgt1 hypersuppressive p- diploid strain. We find that p+ genomes can be comaintained along with hypersuppressive p- mtDNA for extended periods in clonal lines derived from MGT1 x mgt1 matings. However, as expected from the recessive nature of the mgt1 mutation, these p+ genomes are eventually eliminated. Our work indicates that MGT1 plays a crucial role in the competition for inheritance between hypersuppressive p- mtDNAs and the p+ mitochondrial genome. The MGT1 gene product may be a component of a mtDNA replication system that acts preferentially at the rep sequences found in hypersuppressive mtDNAs.
Insights
The MGT1 gene regulates mitochondrial DNA inheritance in yeast. Mutations in MGT1 switch inheritance bias from p- to p+ mitochondrial DNA, impacting yeast zygotic clone transmission.
Area of Science:
- Genetics
- Molecular Biology
- Yeast Biology
Background:
- Mitochondrial DNA (mtDNA) transmission in yeast Saccharomyces cerevisiae is typically biased.
- Hypersuppressive p- mtDNA exhibits a replication advantage, leading to biased inheritance in matings.
Purpose of the Study:
- To identify nuclear genes controlling the biased transmission of yeast mitochondrial DNA.
- To investigate the role of the MGT1 gene in the displacement of p+ mtDNA.
Main Methods:
- Yeast genetics: Mutation analysis of the MGT1 gene.
- Mating experiments: Analyzing mtDNA transmission in haploid and diploid yeast strains.
- Mitochondrial DNA analysis: Assessing the presence and proportion of p- and p+ mtDNA in zygotic progeny.
Main Results:
- Mutation of the MGT1 gene significantly reduces p-mtDNA transmission.
- Absence of functional MGT1 leads to a switch in inheritance bias, favoring p+ mtDNA.
- MGT1 functions as a recessive allele in diploid yeast matings, efficiently displacing p+ mtDNA.
Conclusions:
- MGT1 is crucial for the competitive inheritance between hypersuppressive p-mtDNAs and the p+ mitochondrial genome.
- The MGT1 gene product may be involved in a mtDNA replication system targeting hypersuppressive mtDNA.
- Understanding MGT1's role provides insights into the mechanisms governing organelle DNA inheritance.