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Molecular mechanisms and topological consequences of drastic chromosomal rearrangements of muntjac deer
by
Zhou, Qi
, Zhang, Chenzhou
, Zhou, Jiong
, Zhuo, Bingzhao
, Wang, Wen
, Li, Zhipeng
, Zhang, Baowei
, Huang, Guangping
, Wei, Fuwen
, Yin, Yuan
, Hu, Yibo
, Zhong, Zhenyu
, Liu, Guichun
, Li, Zihe
, Nie, Wenhui
, Chen, Xianqing
, Liu, Chang
, Zhou, Botong
, Chen, Lei
, Fan, Guangyi
, Yu, Jianping
, Liu, Lin
, Lin, Zeshan
, Zhou, Fan
, Zhang, Yaolei
, Qian, Haiyuan
, Wang, Jinhuan
, Fan, Huizhong
, Zhu, Wenbo
, Yang, Yue
, Chang, Jiang
, Peng, Yingmei
in
45/22
/ 45/23
/ 49/91
/ 631/181/2474
/ 631/208/177
/ 631/208/212/2304
/ 631/208/212/748
/ Animals
/ Chromatin
/ Chromatin - genetics
/ Chromosome Aberrations - statistics & numerical data
/ Chromosome Aberrations - veterinary
/ Chromosome rearrangements
/ Chromosomes
/ Chromosomes, Mammalian - genetics
/ Contig Mapping
/ Deer
/ Deer - classification
/ Deer - genetics
/ Demography
/ Evolution
/ Evolution, Molecular
/ Female
/ Genome - genetics
/ Genomes
/ Humanities and Social Sciences
/ Hydropotes inermis
/ Inversions
/ Karyotypes
/ Male
/ Males
/ Mammals
/ Molecular modelling
/ multidisciplinary
/ Muntiacus crinifrons
/ Muntiacus gongshanensis
/ Muntiacus reevesi
/ Muntjacs - classification
/ Muntjacs - genetics
/ Phylogeny
/ Recombination
/ Science
/ Science (multidisciplinary)
/ Sex chromosomes
/ Sex Chromosomes - genetics
/ Speciation
/ Synteny
/ Y chromosomes
2021
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Molecular mechanisms and topological consequences of drastic chromosomal rearrangements of muntjac deer
by
Zhou, Qi
, Zhang, Chenzhou
, Zhou, Jiong
, Zhuo, Bingzhao
, Wang, Wen
, Li, Zhipeng
, Zhang, Baowei
, Huang, Guangping
, Wei, Fuwen
, Yin, Yuan
, Hu, Yibo
, Zhong, Zhenyu
, Liu, Guichun
, Li, Zihe
, Nie, Wenhui
, Chen, Xianqing
, Liu, Chang
, Zhou, Botong
, Chen, Lei
, Fan, Guangyi
, Yu, Jianping
, Liu, Lin
, Lin, Zeshan
, Zhou, Fan
, Zhang, Yaolei
, Qian, Haiyuan
, Wang, Jinhuan
, Fan, Huizhong
, Zhu, Wenbo
, Yang, Yue
, Chang, Jiang
, Peng, Yingmei
in
45/22
/ 45/23
/ 49/91
/ 631/181/2474
/ 631/208/177
/ 631/208/212/2304
/ 631/208/212/748
/ Animals
/ Chromatin
/ Chromatin - genetics
/ Chromosome Aberrations - statistics & numerical data
/ Chromosome Aberrations - veterinary
/ Chromosome rearrangements
/ Chromosomes
/ Chromosomes, Mammalian - genetics
/ Contig Mapping
/ Deer
/ Deer - classification
/ Deer - genetics
/ Demography
/ Evolution
/ Evolution, Molecular
/ Female
/ Genome - genetics
/ Genomes
/ Humanities and Social Sciences
/ Hydropotes inermis
/ Inversions
/ Karyotypes
/ Male
/ Males
/ Mammals
/ Molecular modelling
/ multidisciplinary
/ Muntiacus crinifrons
/ Muntiacus gongshanensis
/ Muntiacus reevesi
/ Muntjacs - classification
/ Muntjacs - genetics
/ Phylogeny
/ Recombination
/ Science
/ Science (multidisciplinary)
/ Sex chromosomes
/ Sex Chromosomes - genetics
/ Speciation
/ Synteny
/ Y chromosomes
2021
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Molecular mechanisms and topological consequences of drastic chromosomal rearrangements of muntjac deer
by
Zhou, Qi
, Zhang, Chenzhou
, Zhou, Jiong
, Zhuo, Bingzhao
, Wang, Wen
, Li, Zhipeng
, Zhang, Baowei
, Huang, Guangping
, Wei, Fuwen
, Yin, Yuan
, Hu, Yibo
, Zhong, Zhenyu
, Liu, Guichun
, Li, Zihe
, Nie, Wenhui
, Chen, Xianqing
, Liu, Chang
, Zhou, Botong
, Chen, Lei
, Fan, Guangyi
, Yu, Jianping
, Liu, Lin
, Lin, Zeshan
, Zhou, Fan
, Zhang, Yaolei
, Qian, Haiyuan
, Wang, Jinhuan
, Fan, Huizhong
, Zhu, Wenbo
, Yang, Yue
, Chang, Jiang
, Peng, Yingmei
in
45/22
/ 45/23
/ 49/91
/ 631/181/2474
/ 631/208/177
/ 631/208/212/2304
/ 631/208/212/748
/ Animals
/ Chromatin
/ Chromatin - genetics
/ Chromosome Aberrations - statistics & numerical data
/ Chromosome Aberrations - veterinary
/ Chromosome rearrangements
/ Chromosomes
/ Chromosomes, Mammalian - genetics
/ Contig Mapping
/ Deer
/ Deer - classification
/ Deer - genetics
/ Demography
/ Evolution
/ Evolution, Molecular
/ Female
/ Genome - genetics
/ Genomes
/ Humanities and Social Sciences
/ Hydropotes inermis
/ Inversions
/ Karyotypes
/ Male
/ Males
/ Mammals
/ Molecular modelling
/ multidisciplinary
/ Muntiacus crinifrons
/ Muntiacus gongshanensis
/ Muntiacus reevesi
/ Muntjacs - classification
/ Muntjacs - genetics
/ Phylogeny
/ Recombination
/ Science
/ Science (multidisciplinary)
/ Sex chromosomes
/ Sex Chromosomes - genetics
/ Speciation
/ Synteny
/ Y chromosomes
2021
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Molecular mechanisms and topological consequences of drastic chromosomal rearrangements of muntjac deer
Journal Article
Molecular mechanisms and topological consequences of drastic chromosomal rearrangements of muntjac deer
2021
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Overview
Muntjac deer have experienced drastic karyotype changes during their speciation, making it an ideal model for studying mechanisms and functional consequences of mammalian chromosome evolution. Here we generated chromosome-level genomes for
Hydropotes inermis
(2n = 70),
Muntiacus reevesi
(2n = 46), female and male
M. crinifrons
(2n = 8/9) and a contig-level genome for
M. gongshanensis
(2n = 8/9). These high-quality genomes combined with Hi-C data allowed us to reveal the evolution of 3D chromatin architectures during mammalian chromosome evolution. We find that the chromosome fusion events of muntjac species did not alter the A/B compartment structure and topologically associated domains near the fusion sites, but new chromatin interactions were gradually established across the fusion sites. The recently borne neo-Y chromosome of
M. crinifrons
, which underwent male-specific inversions, has dramatically restructured chromatin compartments, recapitulating the early evolution of canonical mammalian Y chromosomes. We also reveal that a complex structure containing unique centromeric satellite, truncated telomeric and palindrome repeats might have mediated muntjacs’ recurrent chromosome fusions. These results provide insights into the recurrent chromosome tandem fusion in muntjacs, early evolution of mammalian sex chromosomes, and reveal how chromosome rearrangements can reshape the 3D chromatin regulatory conformations during species evolution.
Muntjac deer underwent rapid species radiation and dramatic chromosome fusions within a short period of time. Here the authors reveal that repeat sequences likely mediated illegitimate recombination to result in chromosome fusions and that 3D chromatin architecture around fusion sites have no significant change, while significant interactions across fusion sites were gradually established after speciation.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
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