Abstract
Human neocentromeres are functional centromeres demarcated by CENP-A nucleosomes that form ectopically at alpha satellite-free loci. How neocentromeres reshape local chromatin and which features of native centromeric chromatin are preserved are unknown. We generated gapless, haplotype-resolved assemblies of native and neocentromeres from three patient-derived cell lines. Integrating CpG methylation, CENP-A profiling, and single-molecule chromatin fiber sequencing, we reveal chromatin features that define the essential centromeric architecture reconstituted during neocentromere establishment. We find that a deletion within the satellite array encompassing the hypo-CpG methylation centromere dip regions (CDRs) led to native centromere inactivation, that neocentromeres harbor CDRs and a dichromatin architecture, recapitulating features of alpha-satellite centromeres, and that LINEs demarcate neocentromere boundaries, implicating transposable elements in restricting CENP-A domain spreading. Moreover, neocentromeric chromatin is incompatible with promoter-like chromatin states, redefining the regulatory landscape within genic regions. Finally, using haplotype-specific chromatin footprinting, we resolve CENP-A nucleosome chromatin architecture of active centromeres.
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Abstract
Human neocentromeres are functional centromeres demarcated by CENP-A nucleosomes that form ectopically at alpha satellite-free loci. How neocentromeres reshape local chromatin and which features of native centromeric chromatin are preserved are unknown. We generated gapless, haplotype-resolved assemblies of native and neocentromeres from three patient-derived cell lines. Integrating CpG methylation, CENP-A profiling, and single-molecule chromatin fiber sequencing, we reveal chromatin features that define the essential centromeric architecture reconstituted during neocentromere establishment. We find that a deletion within the satellite array encompassing the hypo-CpG methylation centromere dip regions (CDRs) led to native centromere inactivation, that neocentromeres harbor CDRs and a dichromatin architecture, recapitulating features of alpha-satellite centromeres, and that LINEs demarcate neocentromere boundaries, implicating transposable elements in restricting CENP-A domain spreading. Moreover, neocentromeric chromatin is incompatible with promoter-like chromatin states, redefining the regulatory landscape within genic regions. Finally, using haplotype-specific chromatin footprinting, we resolve CENP-A nucleosome chromatin architecture of active centromeres.
Competing Interest Statement
The authors have declared no competing interest.
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