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Castellani, M.

Publications and source records attributed to Castellani, M..

4 recordsLinked to original sources

A holocentric pangenome links karyotype evolution to meiotic recombination

Chromosomal fissions, fusions and whole-genome duplications propel genome evolution, yet their impact on meiotic recombination is obscured by the centromere constraint, since in monocentric species most large rearrangements are lethal1-4. Holocentric organisms, which distribute kinetochore activity along the entire chromosome, overcome this barrier and therefore offer a unique window onto the interplay between karyotype change and crossover control2. We assembled chromosome-scale genomes for 20 holocentric Rhynchospora species (including 56 haplotypes), representing all major clades of the genus, featuring satellite-based holocentromeres5,6, and integrated single-gamete crossover maps, high-resolution meiotic synapsis immunocytochemistry and Hi-C chromatin architecture. Breakpoint analysis shows that holocentromeric Tyba satellite arrays6,7 are recurrent hotspots for both chromosome fusions and fissions, contributing to the genuss extraordinary chromosome number variation from 2n = 4 to 36. Crossover landscapes group into two apparent modes: strongly distal-biased versus irregularly distributed, which is correlated with divergent patterns of synapsis elongation. Moreover, crossover number scales with chromosome count and meiotic axis length. In contrast, crossover density per megabase is inversely related to chromosome length and to chromatin-loop size. We propose that chromosome fissions create karyotypes with smaller chromosomes folded into shorter loops, thereby increasing the axial substrate accessible for double-strand break formation and elevating recombination frequency. Together, our results provide a structural link between large-scale structural chromosome evolution and meiotic recombination through coupled changes in chromosome number, size, loop geometry, and synapsis dynamics.

genomics↗

Sex without crossovers mimics clonal reproduction in the holocentric plant Rhynchospora tenuis

Meiotic recombination ensures accurate chromosome segregation and promotes genetic diversity by generating crossovers between homologous chromosomes1. While essential in most sexually reproducing organisms, recombination is variably regulated and can be absent in some lineages, a condition known as achiasmy2. However, obligate achiasmy in both sexes of a sexual species has not been previously documented. Here, we investigate the beak-sedge Rhynchospora tenuis, a holocentric plant with the lowest known chromosome number among flowering plants (n = 2) and inverted meiosis3. Using chromosome-scale genome assemblies from nine accessions, molecular cytogenetics, immunocytochemistry, high-throughput single-gamete sequencing and whole-genome sequencing of controlled crosses, we show that R. tenuis undergoes obligate, genome-wide achiasmy in both male and female meiosis. Despite normal early meiotic axis formation, synapsis fails, crossovers are not detected cytologically or genetically, and univalents persist at metaphase I. Extensive haplotype-specific accumulation of transposable elements (TEs) generates segregation distortion (e.g. meiotic drive), favouring the transmission of larger, TE-rich chromosomes. Remarkably, sexual reproduction is retained with fertilisation producing viable seeds only when translocation-compatible gametes meet, indicating strong post-meiotic selection that eliminates incompatible homozygous combinations. As a result, all surviving offspring are genetically identical to the maternal genotype, effectively restoring heterozygosity each generation and mimicking clonal reproduction. We propose that the combined effects of recombination loss, low chromosome number, holocentricity, inverted meiosis, and selective transmission of longer chromosomes enable faithful segregation and clonal-like inheritance despite sexual reproduction. These findings challenge the boundary between sex and clonality, revealing a unique evolutionary strategy linking genome architecture, recombination loss, and transmission bias.

evolutionary biology↗

Pangenome analysis reveals the evolutionary dynamics of repeat-based holocentromeres

Centromeres are essential for chromosome segregation, yet their organisation and evolution remain poorly understood in holocentric species, where kinetochore activity is distributed along entire chromosomes1,2. While monocentric centromeres are often structured by megabase-sized satellite arrays3-5, the role of repetitive DNA in holocentric systems remains enigmatic. Here, we analyse the dynamics of centromeric Tyba satellite DNA repeats and transposable elements across a chromosome-scale pangenome comprising 56 long-read haplotype assemblies from 20 Rhynchospora species6,7, a plant genus with repeat-based holocentromeres8,9. We identify over 4.6 million monomers of the Tyba satellite repeat, arranged into 43,400 discrete arrays that span all chromosomes. CENH3 ChIP-seq reveals that, unexpectedly, the same Tyba satellite defines holocentromere across the entire genus, demonstrating deep conservation of centromeric DNA over over 40 million years despite extensive karyotype evolution and centromere array turnover. We show that Tyba arrays function as modular centromeric units whose number and spacing, but not size, scale with chromosome length. Tyba sequence diversity recapitulates species phylogeny, while higher-order repeat formation and antagonism with transposable elements shape array turnover. A novel synteny-aware algorithm reveals rapid gain, loss, and rearrangement of arrays across homologous chromosomes. Using cytogenetics and polymer simulations, we demonstrate that inter-array spacing governs chromatin loop length and chromatid thickness, linking repeat-based holocentromere organisation directly to chromosome mechanics. Our findings uncover a scalable, modular logic for holocentromere function and establish a framework for understanding the plasticity of repeat-based centromere evolution and genome architecture in eukaryotes.

genomics↗

Meiotic recombination dynamics in plants with repeat-based holocentromeres shed light on the primary drivers of crossover patterning

Centromeres strongly affect (epi)genomic architecture and meiotic recombination dynamics influencing the overall distribution and frequency of crossovers. Here, we studied how recombination is regulated and distributed in the holocentric plant Rhynchospora breviuscula, a species lacking localised centromeres. Combining immunocytochemistry, chromatin analysis and high-throughput single-pollen sequencing, we discovered that crossover frequency is higher at ends related to centred chromosomal regions. Contrasting the diffused distribution of (epi)genetic features and hundreds of repeat-based centromeric units. Remarkably, we found that crossovers were abolished at core centromeric units but not at their vicinity indicating the absence of a centromere effect across repeat-based holocentromeres. We further show that telomere-led pairing and synapsis of homologous chromosomes appear to be the primary force determining the observed U-shaped recombination landscape. While centromere and (epi)genetic properties only affect crossover positioning locally. Our results suggest that the conserved U-shaped crossover distribution of eukaryotes is independent of chromosome compartmentalisation and centromere organisation.

genomics↗