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Perez-Roman, E.

Publications and source records attributed to Perez-Roman, E..

3 recordsLinked to original sources

An atlas of eukaryotic centromere architecture reveals recurrent evolutionary dynamics

Centromeres evolved at the root of eukaryotes to segregate chromosomes during cell division. Despite their ancient origin, centromeric DNA sequences evolve rapidly and adopt diverse architectures, including point centromeres, satellite arrays, transposon clusters, and holocentrics. To analyse centromere evolution at a broad scale, we characterised architectures across 325 diverse Darwin Tree of Life genome assemblies. Centromere architecture is evolutionarily labile, and similar configurations arise independently across divergent lineages. In plants and animals, we modelled centromere evolution as a recurrent cycle, in which satellite- and transposon-based architectures interconvert, with independent origins of holocentricity. We curated >23 million satellite repeats comprising 263 families from 165 species. Despite sequence divergence between satellite families, higher order repeats are prevalent, indicating constraint on repeat architecture rather than primary sequence. Satellite arrays are heavily invaded by diverse transposon families, consistent with convergent adaptation to the centromeric niche. In 89 species, transposons themselves constitute the primary centromere structure. We observed centrophilic transposons forming tandem arrays, suggesting mechanisms for satellite regeneration. Our sample includes five independent origins of holocentricity in plants and animals, which vary in association with periodic satellite arrays. We propose that genetic instability, centrophilic transposition, and transmission distortion promote recurrent centromere architectural interconversions during evolution.

genomics↗

The Nature of Centromeric Repeat Turnovers in the genus Arabidopsis

Centromeres are critical for accurate segregation of chromosomes and are often composed of megabases of tandemly arranged satellite repeats. Yet, despite their conserved function, the DNA sequence of centromeres is, paradoxically, rapidly evolving. To understand the nature of centromeric sequence turnover, we assembled 417 centromeres from nine species representing the entire Arabidopsis genus. In the genus, centromeres are formed by four main satellite repeats with homologous sequences forming central arrays and minor repeat types. We identify the ancestral centromeric repeat type for the Arabidopsis genus and three independent turnovers to different repeats: (1) a complete turnover in A. thaliana, (2) a turnover of seven out of the eight centromeres in the ancestor of A. cebennensis and A. pedemontana, (3) turnovers of three to five centromeres in the genomes of A. halleri and A. lyrata. Most centromeric repeats are also present throughout the genome with shared syntenic locations between Arabidopsis species, and some being similar to parts of transposable elements and genes, suggesting that centromeric repeats originate outside of the centromeres. In allotetraploid A. suecica we find that the repeats from centromeric arrays on one subgenome can transpose and invade the other, likely via transposable element activity. All four main centromeric repeats can recruit the CENH3 (CENP-A) histone variant, however, when a new repeat successfully proliferates in an old array, CENH3 is primarily recruited to the new array marking functional take over. Complete centromeric turnovers occurred in species that experienced severe bottlenecks in their evolutionary history, where new centromeric alleles may have been fixed by genetic drift. Yet, we also observe segregation distortion between two different centromeric repeat types in A. lyrata, suggestive of centromere drive and we propose that both drift and drive contribute to centromeric repeat turnover. Together, our findings reveal the origin of centromeric repeats, mechanisms of repeat proliferation and spread, and the evolutionary dynamics of centromeric repeat turnovers in the Arabidopsis genus.

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↗