<p>Diverse sets of complete human genomes are required to construct a pangenome reference and to understand the extent of complex structural variation. Here we sequence 65 diverse human genomes and build 130 haplotype-resolved assemblies (median continuity of 130 Mb), closing 92% of all previous assembly gaps<sup><CitationRef CitationID="CR1">1</CitationRef>,<CitationRef CitationID="CR2">2</CitationRef></sup> and reaching telomere-to-telomere status for 39% of the chromosomes. We highlight complete sequence continuity of complex loci, including the major histocompatibility complex (MHC), <i>SMN1</i>/<i>SMN2</i>, <i>NBPF8</i> and <i>AMY1/AMY2</i>, and fully resolve 1,852 complex structural variants. In addition, we completely assemble and validate 1,246 human centromeres. We find up to 30-fold variation in α-satellite higher-order repeat array length and characterize the pattern of mobile element insertions into α-satellite higher-order repeat arrays. Although most centromeres predict a single site of kinetochore attachment, epigenetic analysis suggests the presence of two hypomethylated regions for 7% of centromeres. Combining our data with the draft pangenome reference<sup><CitationRef CitationID="CR1">1</CitationRef></sup> significantly enhances genotyping accuracy from short-read data, enabling whole-genome inference<sup><CitationRef CitationID="CR3">3</CitationRef></sup> to a median quality value of 45. Using this approach, 26,115 structural variants per individual are detected, substantially increasing the number of structural variants now amenable to downstream disease association studies.</p>

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Complex genetic variation in nearly complete human genomes

  • Glennis A. Logsdon,
  • Peter Ebert,
  • Peter A. Audano,
  • Mark Loftus,
  • David Porubsky,
  • Jana Ebler,
  • Feyza Yilmaz,
  • Pille Hallast,
  • Timofey Prodanov,
  • DongAhn Yoo,
  • Carolyn A. Paisie,
  • William T. Harvey,
  • Xuefang Zhao,
  • Gianni V. Martino,
  • Mir Henglin,
  • Katherine M. Munson,
  • Keon Rabbani,
  • Chen-Shan Chin,
  • Bida Gu,
  • Hufsah Ashraf,
  • Stephan Scholz,
  • Olanrewaju Austine-Orimoloye,
  • Parithi Balachandran,
  • Marc Jan Bonder,
  • Haoyu Cheng,
  • Zechen Chong,
  • Jonathan Crabtree,
  • Mark Gerstein,
  • Lisbeth A. Guethlein,
  • Patrick Hasenfeld,
  • Glenn Hickey,
  • Kendra Hoekzema,
  • Sarah E. Hunt,
  • Matthew Jensen,
  • Yunzhe Jiang,
  • Sergey Koren,
  • Youngjun Kwon,
  • Chong Li,
  • Heng Li,
  • Jiaqi Li,
  • Paul J. Norman,
  • Keisuke K. Oshima,
  • Benedict Paten,
  • Adam M. Phillippy,
  • Nicholas R. Pollock,
  • Tobias Rausch,
  • Mikko Rautiainen,
  • Yuwei Song,
  • Arda Söylev,
  • Arvis Sulovari,
  • Likhitha Surapaneni,
  • Vasiliki Tsapalou,
  • Weichen Zhou,
  • Ying Zhou,
  • Qihui Zhu,
  • Michael C. Zody,
  • Ryan E. Mills,
  • Scott E. Devine,
  • Xinghua Shi,
  • Michael E. Talkowski,
  • Mark J. P. Chaisson,
  • Alexander T. Dilthey,
  • Miriam K. Konkel,
  • Jan O. Korbel,
  • Charles Lee,
  • Christine R. Beck,
  • Evan E. Eichler,
  • Tobias Marschall

摘要

Diverse sets of complete human genomes are required to construct a pangenome reference and to understand the extent of complex structural variation. Here we sequence 65 diverse human genomes and build 130 haplotype-resolved assemblies (median continuity of 130 Mb), closing 92% of all previous assembly gaps1,2 and reaching telomere-to-telomere status for 39% of the chromosomes. We highlight complete sequence continuity of complex loci, including the major histocompatibility complex (MHC), SMN1/SMN2, NBPF8 and AMY1/AMY2, and fully resolve 1,852 complex structural variants. In addition, we completely assemble and validate 1,246 human centromeres. We find up to 30-fold variation in α-satellite higher-order repeat array length and characterize the pattern of mobile element insertions into α-satellite higher-order repeat arrays. Although most centromeres predict a single site of kinetochore attachment, epigenetic analysis suggests the presence of two hypomethylated regions for 7% of centromeres. Combining our data with the draft pangenome reference1 significantly enhances genotyping accuracy from short-read data, enabling whole-genome inference3 to a median quality value of 45. Using this approach, 26,115 structural variants per individual are detected, substantially increasing the number of structural variants now amenable to downstream disease association studies.