The evolution of African great ape subtelomeric heterochromatin and the fusion of human chromosome 2

被引:30
|
作者
Ventura, Mario [1 ,2 ]
Catacchio, Claudia R. [1 ,2 ]
Sajjadian, Saba [1 ]
Vives, Laura [1 ]
Sudmant, Peter H. [1 ]
Marques-Bonet, Tomas [3 ,4 ]
Graves, Tina A. [5 ]
Wilson, Richard K. [5 ]
Eichler, Evan E. [1 ,6 ]
机构
[1] Univ Washington, Sch Med, Dept Genome Sci, Seattle, WA 98195 USA
[2] Univ Bari, Dept Genet & Microbiol, I-70126 Bari, Italy
[3] Univ Pompeu Fabra, Inst Biol Evolut UPF CSIC, IBE, Barcelona 08003, Catalonia, Spain
[4] ICREA, Barcelona 08010, Spain
[5] Washington Univ, Genome Sequencing Ctr, Sch Med, St Louis, MO 63108 USA
[6] Howard Hughes Med Inst, Seattle, WA 98195 USA
关键词
GENOME; SEQUENCE; RECOMBINATION; ORIGIN; SUBFAMILIES; CHIMPANZEES; REGIONS;
D O I
10.1101/gr.136556.111
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Chimpanzee and gorilla chromosomes differ from human chromosomes by the presence of large blocks of subterminal heterochromatin thought to be composed primarily of arrays of tandem satellite sequence. We explore their sequence composition and organization and show a complex organization composed of specific sets of segmental duplications that have hyperexpanded in concert with the formation of subterminal satellites. These regions are highly copy number polymorphic between and within species, and copy number differences involving hundreds of copies can be accurately estimated by assaying read-depth of next-generation sequencing data sets. Phylogenetic and comparative genomic analyses suggest that the structures have arisen largely independently in the two lineages with the exception of a few seed sequences present in the common ancestor of humans and African apes. We propose a model where an ancestral human-chimpanzee pericentric inversion and the ancestral chromosome 2 fusion both predisposed and protected the chimpanzee and human genomes, respectively, to the formation of subtelomeric heterochromatin. Our findings highlight the complex interplay between duplicated sequences and chromosomal rearrangements that rapidly alter the cytogenetic landscape in a short period of evolutionary time.
引用
收藏
页码:1036 / 1049
页数:14
相关论文
共 50 条
  • [41] Molecular Evolution of the Fusion (F) Genes in Human Parainfluenza Virus Type 2
    Shirai, Tatsuya
    Mizukoshi, Fuminori
    Kimura, Ryusuke
    Matsuoka, Rina
    Sada, Mitsuru
    Shirato, Kazuya
    Ishii, Haruyuki
    Ryo, Akihide
    Kimura, Hirokazu
    MICROORGANISMS, 2025, 13 (02)
  • [42] Organization, structure and evolution of the CYP2 gene cluster on human chromosome 19
    Hoffman, SMG
    Nelson, DR
    Keeney, DS
    PHARMACOGENETICS, 2001, 11 (08): : 687 - 698
  • [43] The evolution of human chromosome 2 analyzed by high-resolution fluorescence in situ hybridization
    Kasai, F
    Hirai, M
    ANTHROPOLOGICAL SCIENCE, 1997, 105 (01) : B02 - B02
  • [44] EVOLUTION AND MAPPING OF 2 CANDIDATE GENES TO THE LONG ARM OF THE HUMAN Y-CHROMOSOME
    OSTRER, H
    WHISENANT, EC
    RASHEED, BKA
    CLAYTON, CM
    ALLEN, B
    HUIE, MA
    BHATNAGAR, YM
    CYTOGENETICS AND CELL GENETICS, 1989, 51 (1-4): : 1055 - 1055
  • [45] MODERN EVOLUTIONARY STUDIES AND HUMAN-EVOLUTION .5. SOCIAL-STRUCTURE OF THE AFRICAN GREAT APES AND THE PROCESS OF HOMINIZATION
    FURUICHI, T
    JOURNAL OF THE ANTHROPOLOGICAL SOCIETY OF NIPPON, 1990, 98 (02): : 205 - 205
  • [46] Molecular evolution of genes from the POLR2J family on human chromosome 7
    Shpakovski, DG
    Shematorova, EK
    Shpakovski, GV
    FEBS JOURNAL, 2005, 272 : 134 - 134
  • [47] Punctuated duplication seeding events during the evolution of human chromosome 2p11
    Horvath, JE
    Gulden, CL
    Vallente, RU
    Eichler, MY
    Ventura, M
    McPherson, JD
    Graves, TA
    Wilson, RK
    Schwartz, S
    Rocchi, M
    Eichler, EE
    GENOME RESEARCH, 2005, 15 (07) : 914 - 927
  • [48] The evolution of a neo-XY1Y2 sex chromosome system by autosome–sex chromosome fusion in Dundocoris nodulicarinus Jacobs (Heteroptera: Aradidae: Carventinae)
    D. H. Jacobs
    Chromosome Research, 2004, 12
  • [49] Reciprocal chromosome painting shows that the great difference in diploid number between human and African green monkey is mostly due to non-Robertsonian fissions
    P. Finelli
    R. Stanyon
    R. Plesker
    M.A. Ferguson-Smith
    P.C.M. O'Brien
    J. Wienberg
    Mammalian Genome, 1999, 10 : 713 - 718
  • [50] Reciprocal chromosome painting shows that the great difference in diploid number between human and African green monkey is mostly due to non-Robertsonian fissions
    Finelli, P
    Stanyon, R
    Plesker, R
    Ferguson-Smith, MA
    O'Brien, PCM
    Wienberg, J
    MAMMALIAN GENOME, 1999, 10 (07) : 713 - 718