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Methodology for Accurate Detection of Mitochondrial DNA Methylation
Published on: May 20, 2018
Mitochondrial DNA polymorphisms and sperm motility in Mytilus edulis (Bivalvia: Mytilidae)
Erin M Everett1, Peter J Williams, Glenys Gibson
1Department of Biology, Acadia University, Wolfville, Nova Scotia B4P 2R6, Canada.
Abstract:
The system of mitochondrial DNA (mtDNA) inheritance in Mytilus and other bivalves, termed doubly uniparental inheritance (DUI), is novel among animals. Males pass on their male transmitted (M-type) mtDNA from fathers to their sons whereas females pass on their female transmitted (F-type) mtDNA from mothers to both sons and daughters. Thus, Mytilus males contain two distinct types of mtDNA. Interestingly, sperm contains only the paternal mtDNA. Phylogenetic analysis has shown that some female types have been able to switch their route of inheritance. These "recently masculinized" mitochondrial genomes behave as a typical M-type in that they are transmitted from generation to generation through sperm. Because the "recently masculinized" and "standard" male mitotypes in M. edulis exhibit approximately 8.7% amino acid sequence divergence, we hypothesized that these differences could affect mitochondrial, and hence sperm, functions. Furthermore, since recently masculinized mitotypes have been shown to replace standard male types periodically over evolutionary timescales, we tested the hypothesis that sperm swimming speeds would be greater for males with recently masculinized M-type genomes. Sperm activity was videotaped, digitized and tracked. A linear mixed effects model found no significant difference in linear velocities or curvilinear speeds between the mitotypes suggesting that swimming speeds are similar for both in the period shortly after spawning.
Insights
Doubly uniparental inheritance (DUI) in Mytilus involves distinct male and female mitochondrial DNA (mtDNA) transmission. Studies show no significant difference in sperm swimming speeds between recently masculinized and standard M-type mtDNA genomes.
Area of Science:
- Evolutionary biology
- Genetics
- Marine biology
Background:
- Mitochondrial DNA (mtDNA) inheritance in Mytilus and bivalves follows a unique doubly uniparental inheritance (DUI) system.
- Males transmit male-transmitted (M-type) mtDNA paternally, while females transmit female-transmitted (F-type) mtDNA maternally.
Purpose of the Study:
- Investigate the functional impact of "recently masculinized" M-type mtDNA on sperm performance.
- Test the hypothesis that males with recently masculinized mtDNA exhibit enhanced sperm swimming speeds compared to standard M-type males.
Main Methods:
- Phylogenetic analysis identified "recently masculinized" mitochondrial genomes.
- Sperm activity was assessed using digitized video tracking.
- A linear mixed effects model analyzed differences in sperm velocities and speeds.
Main Results:
- No significant differences were detected in linear velocities or curvilinear speeds between sperm from males with "recently masculinized" and standard M-type mtDNA.
- Sperm swimming speeds appear similar for both mitotypes shortly after spawning.
Conclusions:
- The amino acid divergence between "recently masculinized" and standard M-type mtDNA does not significantly impact sperm swimming speed in Mytilus.
- Further research may explore other potential functional consequences of these mtDNA variations.

