# Diversity and determinants of recombination landscapes in flowering plants

**Authors:** Thomas Brazier, Sylvain Glémin, Kirsten Bomblies, Ian R. Henderson, Kirsten Bomblies, Ian R. Henderson, Kirsten Bomblies, Ian R. Henderson, Kirsten Bomblies, Ian R. Henderson

PMC · DOI: 10.1371/journal.pgen.1010141 · PLoS Genetics · 2022-08-30

## TL;DR

This study explores how recombination events are distributed across chromosomes in flowering plants and identifies patterns linked to chromosome structure and gene density.

## Contribution

The paper introduces a new conceptual model explaining recombination distribution based on chromosome length, structure, and gene density.

## Key findings

- The number of crossovers per chromosome varies little among species, ranging from one to five or six.
- Two main recombination patterns along chromosomes are identified, explained by a new model involving chromosome length and gene density.
- Gene density strongly influences recombination distribution, raising new questions about its evolutionary implications.

## Abstract

During meiosis, crossover rates are not randomly distributed along the chromosome and their location may have a strong impact on the functioning and evolution of the genome. To date, the broad diversity of recombination landscapes among plants has rarely been investigated and a formal comparative genomic approach is still needed to characterize and assess the determinants of recombination landscapes among species and chromosomes. We gathered genetic maps and genomes for 57 flowering plant species, corresponding to 665 chromosomes, for which we estimated large-scale recombination landscapes. We found that the number of crossover per chromosome spans a limited range (between one to five/six) whatever the genome size, and that there is no single relationship across species between genetic map length and chromosome size. Instead, we found a general relationship between the relative size of chromosomes and recombination rate, while the absolute length constrains the basal recombination rate for each species. At the chromosome level, we identified two main patterns (with a few exceptions) and we proposed a conceptual model explaining the broad-scale distribution of crossovers where both telomeres and centromeres play a role. These patterns correspond globally to the underlying gene distribution, which affects how efficiently genes are shuffled at meiosis. These results raised new questions not only on the evolution of recombination rates but also on their distribution along chromosomes.

Meiotic recombination is a universal feature of sexually reproducing species. During meiosis, crossovers play a fundamental role for the proper segregation of chromosomes during meiosis and reshuffles alleles among chromosomes. How much variation in recombination is expected within a genome and among different species remains a central question for understanding the evolution of recombination. We characterized and compared recombination landscapes in a large set of plant species with a wide range of genome size. We found that the number of crossovers varied little among species, from one mandatory to no more than five or six crossovers per chromosomes, whatever the genome size. However, we identified two main patterns of variation along chromosomes (with a few exceptions) that can be explained by a new conceptual model where chromosome length, chromosome structure and gene density play a role. The strong association between gene density and recombination was already known, but raised new questions not only about the evolution of recombination rates but also on their distribution along chromosomes.

## Full-text entities

- **Genes:** ASY1 (DNA-binding HORMA family protein) [NCBI Gene 843058] {aka ASYNAPTIC 1, ATASY1, F1N21.19}
- **Diseases:** colour-blindness (MESH:D001766), DSBs (MESH:D019457), CO (MESH:D002303)
- **Species:** Arabidopsis thaliana (mouse-ear cress, species) [taxon 3702], Mangifera indica (mango, species) [taxon 29780], Manihot esculenta (cassava, species) [taxon 3983], Arabidopsis arenosa (species) [taxon 38785], Vigna unguiculata (cowpea, species) [taxon 3917], Drosophila melanogaster (fruit fly, species) [taxon 7227], Sesamum indicum (beniseed, species) [taxon 4182], Dioscorea alata (greater yam, species) [taxon 55571], Capsella rubella (species) [taxon 81985], Nelumbo nucifera (Indian lotus, species) [taxon 4432], Arabidopsis lyrata (lyrate rockcress, species) [taxon 59689], Cucurbita maxima (Boston marrow, species) [taxon 3661], C. elegans [taxon 328850], Triticum aestivum (bread wheat, species) [taxon 4565], Erythranthe guttata (common monkey flower, species) [taxon 4155], Camellia sinensis (black tea, species) [taxon 4442]

## Full text

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## Figures

11 figures with captions in the complete paper: https://tomesphere.com/paper/PMC9467342/full.md

## References

75 references — full list in the complete paper: https://tomesphere.com/paper/PMC9467342/full.md

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Source: https://tomesphere.com/paper/PMC9467342