ArticleMolecular biology and evolution2024
Heteroplasmy Is Rare in Plant Mitochondria Compared with Plastids despite Similar Mutation Rates.
Article in Molecular biology and evolution, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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9 citing papers in PubMed.
- Towards whole plastome phylogeography: resolving small genetic distances among European Arnica montana L. with the PlastidPipeline.Scientific reports · 2026Article
- A reproducible compartment-aware k-mer set-algebra and MAW workflow for plant genomes maps contrasting nuclear-organelle sharing landscapes in Arabidopsis and rice.Plant methods · 2026Article
- Chloroplast and Mitochondrial Genomes of the Lichen-Symbiotic Green Alga Trebouxia Illuminate Evolutionary Relationships and Climate Associations and Yield New Phylogenetic Markers.Genome biology and evolution · 2026Article
- The multichromosomal structure evolution ofFrontiers in plant science · 2026Article
- Complex plastome structural variation caused by intermolecular and intramolecular recombination accounts for leaf variegation inPlant diversity · 2026Article
- Plastome diversity and phylogenetic insights among modern Egyptian wheat cultivars: Genome-Wide and Gene-Level perspectives.BMC plant biology · 2025Article
- The combination of active partitioning and toxin-antitoxin systems is most advantageous for low-copy plasmid fitness.Nature communications · 2025Article
- Analysis of the complete mitogenomes of three high economic value tea plants (Tea-oil Camellia) provide insights into evolution and phylogeny relationship.Frontiers in plant science · 2025Article
- Evolution and maintenance of mtDNA gene content across eukaryotes.The Biochemical journal · 2024Review
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4 authors.
Funding
Abstract
Plant cells harbor two membrane-bound organelles containing their own genetic material-plastids and mitochondria. Although the two organelles coexist and coevolve within the same plant cells, they differ in genome copy number, intracellular organization, and mode of segregation. How these attributes affect the time to fixation or, conversely, loss of neutral alleles is currently unresolved. Here, we show that mitochondria and plastids share the same mutation rate, yet plastid alleles remain in a heteroplasmic state significantly longer compared with mitochondrial alleles. By analyzing genetic variants across populations of the marine flowering plant Zostera marina and simulating organelle allele dynamics, we examine the determinants of allele segregation and allele fixation. Our results suggest that the bottlenecks on the cell population, e.g. during branching or seeding, and stratification of the meristematic tissue are important determinants of mitochondrial allele dynamics. Furthermore, we suggest that the prolonged plastid allele dynamics are due to a yet unknown active plastid partition mechanism. The dissimilarity between plastid and mitochondrial novel allele fixation at different levels of organization may manifest in differences in adaptation processes. Our study uncovers fundamental principles of organelle population genetics that are essential for further investigations of long-term evolution and molecular dating of divergence events.
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