ArticleMolecular ecology2024
Genomic hotspots of chromosome rearrangements explain conserved synteny despite high rates of chromosome evolution in a holocentric lineage.
Article in Molecular ecology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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11 citing papers in PubMed, 22 citations in OpenAlex.
- Hybridization and Polyploidy Shaped the Evolutionary History of a Complex of Cryptic Species in European Woodrushes (Luzula sect. Luzula).Systematic biology · 2026Article
- The Potential of NGTs to Overcome Constraints in Plant Breeding and Their Regulatory Implications.International journal of molecular sciences · 2025Review
- Investigating the evolution of large meiotic rings of multiple X and Y sex chromosomes in two Leptodactylus frog species (Anura, Leptodactylidae).Communications biology · 2025Article
- Centromere diversity and its evolutionary impacts on plant karyotypes and plant reproduction.The New phytologist · 2025Review
- Complex Genomic Landscape of Inversion Polymorphism in Europe's Most Destructive Forest Pest.Genome biology and evolution · 2024Article
- Genomic hotspots of chromosome rearrangements explain conserved synteny despite high rates of chromosome evolution in a holocentric lineage.Molecular ecology · 2024Article
- Holocentric repeat landscapes: From micro-evolutionary patterns to macro-evolutionary associations with karyotype evolution.Molecular ecology · 2024Article
- The holocentric chromosome microevolution: From phylogeographic patterns to genomic associations with environmental gradients.Molecular ecology · 2024Article
- Repeat-based holocentromeres of the woodrush Luzula sylvatica reveal insights into the evolutionary transition to holocentricity.Nature communications · 2024Article
- Oligo-barcode illuminates holocentric karyotype evolution inFrontiers in plant science · 2024Article
- The Impact of Chromosomal Rearrangements in Speciation: From Micro- to Macroevolution.Cold Spring Harbor perspectives in biology · 2023Review
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Authors and funding
4 authors at 4 institutions in 4 countries.
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Abstract
Holocentric organisms, unlike typical monocentric organisms, have kinetochore activity distributed along almost the whole length of the chromosome. Because of this, chromosome rearrangements through fission and fusion are more likely to become fixed in holocentric species, which may account for the extraordinary rates of chromosome evolution that many holocentric lineages exhibit. Long blocks of genome synteny have been reported in animals with holocentric chromosomes despite high rates of chromosome rearrangements. Nothing is known from plants, however, despite the fact that holocentricity appears to have played a key role in the diversification of one of the largest angiosperm genera, Carex (Cyperaceae). In the current study, we compared genomes of Carex species and a distantly related Cyperaceae species to characterize conserved and rearranged genome regions. Our analyses span divergence times ranging between 2 and 50 million years. We also compared a C. scoparia chromosome-level genome assembly with a linkage map of the same species to study rearrangements at a population level and suppression of recombination patterns. We found longer genome synteny blocks than expected under a null model of random rearrangement breakpoints, even between very distantly related species. We also found repetitive DNA to be non-randomly associated with holocentromeres and rearranged regions of the genome. The evidence of conserved synteny in sedges despite high rates of chromosome fission and fusion suggests that conserved genomic hotspots of chromosome evolution related to repetitive DNA shape the evolution of recombination, gene order and crossability in sedges. This finding may help explain why sedges are able to maintain species cohesion even in the face of high interspecific chromosome rearrangements.
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