TY - JOUR
T1 - A Telomere-to-telomere Diploid Reference Genome and Centromere Structure of the Chinese Quartet
AU - Wang, Bo
AU - Jia, Peng
AU - Bush, Stephen J.
AU - Wang, Xia
AU - Yang, Yi
AU - Zhang, Yu
AU - Wan, Shijie
AU - Yang, Xiaofei
AU - Zhang, Pengyu
AU - Zheng, Yuanting
AU - Shi, Leming
AU - Dong, Lianhua
AU - Ye, Kai
N1 - Publisher Copyright:
© The Author(s) 2025. Published by Oxford University Press and Science Press on behalf of the Beijing Institute of Genomics, Chinese Academy of Sciences / China National Center for Bioinformation and Genetics Society of China.
PY - 2025/12
Y1 - 2025/12
N2 - Recent advances in sequencing technologies have enabled the complete assembly of human genomes from telomere to telomere (T2T), resolving previously inaccessible regions such as centromeres and segmental duplications. Here, we present an updated, higher-quality, haplotype-phased T2T assembly of the Chinese Quartet (T2T-CQ), a family cohort comprising monozygotic twins and their parents, generated using high-coverage Oxford Nanopore Technologies (ONT) ultralong and PacBio high-fidelity (HiFi) sequencing. The T2T-CQ assembly serves as a crucial reference genome for integrating publicly available multi-omics data and advances the utility of the Quartet reference materials. The T2T-CQ assembly scores highly on multiple metrics of continuity and completeness, with Genome Continuity Inspector (GCI) scores of 77.76 (maternal) and 76.41 (paternal), 21-mer quality values (QVs) > 66, and Clipping Reveals Assembly Quality (CRAQ) scores > 99.6 for both haplotypes, enabling complete annotation of centromeric regions. Within these regions, we identified novel 13-mer higher-order repeat patterns on chromosome 17 which exhibited a monophyletic origin and emerged approximately 230 thousand years ago. Overall, this work establishes an essential genomic resource for the Han Chinese population and advances the development of a T2T pan-Chinese reference genome, which will significantly enable future investigations both into population-specific structural variants and the evolutionary dynamics of centromeres.
AB - Recent advances in sequencing technologies have enabled the complete assembly of human genomes from telomere to telomere (T2T), resolving previously inaccessible regions such as centromeres and segmental duplications. Here, we present an updated, higher-quality, haplotype-phased T2T assembly of the Chinese Quartet (T2T-CQ), a family cohort comprising monozygotic twins and their parents, generated using high-coverage Oxford Nanopore Technologies (ONT) ultralong and PacBio high-fidelity (HiFi) sequencing. The T2T-CQ assembly serves as a crucial reference genome for integrating publicly available multi-omics data and advances the utility of the Quartet reference materials. The T2T-CQ assembly scores highly on multiple metrics of continuity and completeness, with Genome Continuity Inspector (GCI) scores of 77.76 (maternal) and 76.41 (paternal), 21-mer quality values (QVs) > 66, and Clipping Reveals Assembly Quality (CRAQ) scores > 99.6 for both haplotypes, enabling complete annotation of centromeric regions. Within these regions, we identified novel 13-mer higher-order repeat patterns on chromosome 17 which exhibited a monophyletic origin and emerged approximately 230 thousand years ago. Overall, this work establishes an essential genomic resource for the Han Chinese population and advances the development of a T2T pan-Chinese reference genome, which will significantly enable future investigations both into population-specific structural variants and the evolutionary dynamics of centromeres.
KW - Centromere
KW - Complex genomic region
KW - Genome assembly
KW - Higher-order repeat
KW - Monozygotic twins
UR - https://www.scopus.com/pages/publications/105035708225
U2 - 10.1093/gpbjnl/qzaf118
DO - 10.1093/gpbjnl/qzaf118
M3 - 文章
C2 - 41298323
AN - SCOPUS:105035708225
SN - 1672-0229
VL - 23
JO - Genomics, proteomics & bioinformatics / Beijing Genomics Institute
JF - Genomics, proteomics & bioinformatics / Beijing Genomics Institute
IS - 6
ER -