Cycles of satellite and transposon evolution in Arabidopsis centromeres
Centromeres are critical for cell division, loading CENH3 or CENPA histone variant nucleosomes, directing kinetochore formation and allowing chromosome segregation 1 , 2 . Despite their conserved function, centromere size and structure are diverse across species. To understand this centromere parado...
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Veröffentlicht in: | Nature (London) 2023-06, Vol.618 (7965), p.557-565 |
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Sprache: | eng |
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Zusammenfassung: | Centromeres are critical for cell division, loading CENH3 or CENPA histone variant nucleosomes, directing kinetochore formation and allowing chromosome segregation
1
,
2
. Despite their conserved function, centromere size and structure are diverse across species. To understand this centromere paradox
3
,
4
, it is necessary to know how centromeric diversity is generated and whether it reflects ancient trans-species variation or, instead, rapid post-speciation divergence. To address these questions, we assembled 346 centromeres from 66
Arabidopsis thaliana
and 2
Arabidopsis lyrata
accessions, which exhibited a remarkable degree of intra- and inter-species diversity.
A.
thaliana
centromere repeat arrays are embedded in linkage blocks, despite ongoing internal satellite turnover, consistent with roles for unidirectional gene conversion or unequal crossover between sister chromatids in sequence diversification. Additionally, centrophilic
ATHILA
transposons have recently invaded the satellite arrays. To counter
ATHILA
invasion, chromosome-specific bursts of satellite homogenization generate higher-order repeats and purge transposons, in line with cycles of repeat evolution. Centromeric sequence changes are even more extreme in comparison between
A.
thaliana
and
A.
lyrata
. Together, our findings identify rapid cycles of transposon invasion and purging through satellite homogenization, which drive centromere evolution and ultimately contribute to speciation.
Inter- and intra-species comparison of
Arabidopsis
centromere variation identifies rapid cycles of transposon invasion and purging through satellite homogenization that drive centromere evolution. |
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ISSN: | 0028-0836 1476-4687 |
DOI: | 10.1038/s41586-023-06062-z |