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February 20, 2026Nature0 citationsOpen Access

Ancient co-option of LTR retrotransposons as yeast centromeres

MHMax A. B. HaaseLLLuciana Lazar‐StefanitaLBLyam Baudry

Key Points

  • This study aims to uncover the evolutionary origins of point centromeres in yeast, focusing on their transition from ancestral forms.
  • Identified proto-point centromeres through genome analysis in Saccharomyces cerevisiae and related species.
  • Conducted comparative and phylogenetic analyses to track the evolution of centromeric structures.
  • Analyzed the organization and variability of centromeric regions, especially concerning retrotransposon contributions.
  • Identified proto-point centromeres that feature an AT-rich core and specific nucleosome positioning.
  • Showed that these centromeres are found within retrotransposon-derived repeat clusters.
  • Demonstrated a link between ancestral repeat-rich centromeres and modern genetically defined point centromeres.

Abstract

Abstract Centromeres ensure accurate chromosome segregation, yet their DNA evolves rapidly across eukaryotes leaving the origins of new centromere architectures unclear 1–4 . The brewer’s yeast Saccharomyces cerevisiae exemplifies this long-standing puzzle. Its centromeres shifted ancestrally from large, repeat-rich, epigenetically specified forms to the compact, genetically defined ‘point’ centromeres 1,5 . How this transition occurred has remained unresolved 6 . Here we identify evolutionarily related ‘proto-point’ centromeres that provide a resolution to the evolutionary origins of point centromeres. Proto-point centromeres contain a single centromeric nucleosome positioned over an AT-rich core, accompanied by relaxed organization and sequence variability of flanking cis -elements. In two species, these proto-point centromeres lie within retrotransposon-derived repeat clusters, linking ancestral repeat-rich centromeres to genetically encoded ones. Comparative and phylogenetic analyses indicate that proto-point and point centromeres evolved in an ancestor with retrotransposon-rich centromeres. These results identify long-terminal-repeat retrotransposons, specifically Ty5 sequences, as the genetic substrate for point-centromere evolution and provide a mechanistic route by which an epigenetic centromere can become genetically specified. More broadly, they show how selfish elements can be co-opted to perform essential chromosomal functions.

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Cite This Study

Haase et al. (2026) studied this question.

synapsesocial.com/papers/6997fa90ad1d9b11b3453dcehttps://doi.org/10.1038/s41586-025-10092-0
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Tempo and Mode of Genome Evolution in the Budding Yeast Subphylum2018 · 729 citations
  2. 2Normalization of a chromosomal contact map2012 · 233 citations
  3. 3IQ-TREE 3: phylogenomic inference software using complex evolutionary models2026 · 394 citations
  4. 4Plasmids Resembling 2- m DNA in the Osmotolerant Yeasts Saccharomyces bailii and Saccharomyces bisporus1984 · 54 citations
  5. 5Isolation of a yeast centromere and construction of functional small circular chromosomes1980 · 808 citations