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Karpen, G. H.

Publications and source records attributed to Karpen, G. H..

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Diverse haplotypes span human centromeres and include archaic lineages within and out of Africa

Despite critical roles in chromosome segregation and disease, the repetitive structure and vast size of centromeres and their surrounding heterochromatic regions impede studies of genomic variation. We report here large-scale haplotypes (cenhaps) in humans that span the centromere-proximal regions of all metacentric chromosomes, including the arrays of highly repeated -satellites on which centromeres form. Cenhaps reveal surprisingly deep diversity, including entire introgressed Neanderthal centromeres and equally ancient lineages among Africans. These centromere-spanning haplotypes contain variants, including large differences in -satellite DNA content, which may influence the fidelity and bias of chromosome transmission. The discovery of cenhaps creates new opportunities to investigate their contribution to phenotypic variation, especially in meiosis and mitosis, as well as to more incisively model the unexpectedly rich evolution of these challenging genomic regions.\n\nOne Sentence SummaryGenomic polymorphism across centromeric regions of humans is organized into large-scale haplotypes with great diversity, including entire Neanderthal centromeres.

genomics

Timely double-strand break repair and pathway choice in pericentromeric heterochromatin depend on the histone demethylase dKDM4A

Introduction Introduction Results Discussion Materials Methods References One of the most harmful DNA lesions is a double-strand break (DSB), whose improper repair can lead to formation of aberrant chromosomes linked to cancer and developmental diseases 1. At DSBs, the severed strands of the DNA helix are repaired by a variety of mechanisms. The two major DSB repair pathways are Non-Homologous End Joining (NHEJ) and Homologous Recombination (HR). NHEJ repairs DNA by ligating both ends of the DSB together, often resulting in small insertions and deletions at the break site. HR repair involves more extensive processing of the DSB site, in which 5 to 3 end-resection of the DSB ends results in a single-stranded DNA sequence that invades and perfectly copies homologous sequences to repair the DS ...

cell biology