A High-Density Linkage Map Reveals Sexual Dimorphism in Recombination Landscapes in Red Deer (Cervus elaphus)

被引:47
作者
Johnston, Susan E. [1 ]
Huisman, Jisca [1 ]
Ellis, Philip A. [1 ]
Pemberton, Josephine M. [1 ]
机构
[1] Univ Edinburgh, Inst Evolutionary Biol, Charlotte Auerbach Rd, Edinburgh EH9 3FL, Midlothian, Scotland
来源
G3-GENES GENOMES GENETICS | 2017年 / 7卷 / 08期
基金
英国自然环境研究理事会; 欧洲研究理事会;
关键词
heterochiasmy; linkage map; meiotic drive; recombination; red deer; SALMON ONCORHYNCHUS-TSHAWYTSCHA; MEIOTIC DRIVE; INBREEDING DEPRESSION; GENETIC ARCHITECTURE; HUMAN ANEUPLOIDY; EVOLUTION; SELECTION; POPULATION; WILD; CENTROMERES;
D O I
10.1534/g3.117.044198
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
High-density linkage maps are an important tool to gain insight into the genetic architecture of traits of evolutionary and economic interest, and provide a resource to characterize variation in recombination landscapes. Here, we used information from the cattle genome and the 50 K Cervine Illumina BeadChip to inform and refine a high-density linkage map in a wild population of red deer (Cervus elaphus). We constructed a predicted linkage map of 38,038 SNPs and a skeleton map of 10,835 SNPs across 34 linkage groups. We identified several chromosomal rearrangements in the deer lineage relative to sheep and cattle, including six chromosome fissions, one fusion, and two large inversions. Otherwise, our findings showed strong concordance with map orders in the cattle genome. The sex-averaged linkage map length was 2739.7 cM and the genome-wide autosomal recombination rate was 1.04 cM/Mb. The female autosomal map length was 1.21 longer than that of males (2767.4 cM vs. 2280.8 cM, respectively). Sex differences in map length were driven by high female recombination rates in peri-centromeric regions, a pattern that is unusual relative to other mammal species. This effect was more pronounced in fission chromosomes that would have had to produce new centromeres. We propose two hypotheses to explain this effect: (1) that this mechanism may have evolved to counteract centromeric drive associated with meiotic asymmetry in oocyte production; and/or (2) that sequence and structural characteristics suppressing recombination in close proximity to the centromere may not have evolved at neo-centromeres. Our study provides insight into how recombination landscapes vary and evolve in mammals, and will provide a valuable resource for studies of evolution, genetic improvement, and population management in red deer and related species.
引用
收藏
页码:2859 / 2870
页数:12
相关论文
共 60 条
  • [41] High-Resolution Sex-Specific Linkage Maps of the Mouse Reveal Polarized Distribution of Crossovers in Male Germline
    Liu, Eric Yi
    Morgan, Andrew P.
    Chesler, Elissa J.
    Wang, Wei
    Churchill, Gary A.
    de Villena, Fernando Pardo-Manuel
    [J]. GENETICS, 2014, 197 (01) : 91 - 106
  • [42] Cattle Sex-Specific Recombination and Genetic Control from a Large Pedigree Analysis
    Ma, Li
    O'Connell, Jeffrey R.
    VanRaden, Paul M.
    Shen, Botong
    Padhi, Abinash
    Sun, Chuanyu
    Bickhart, Derek M.
    Cole, John B.
    Null, Daniel J.
    Liu, George E.
    Da, Yang
    Wiggans, George R.
    [J]. PLOS GENETICS, 2015, 11 (11):
  • [43] The evolution of heterochiasmy: the role of sexual selection and sperm competition in determining sex-specific recombination rates in eutherian mammals
    Mank, Judith E.
    [J]. GENETICS RESEARCH, 2009, 91 (05) : 355 - 363
  • [44] An integrated linkage map reveals candidate genes underlying adaptive variation in Chinook salmon (Oncorhynchus tshawytscha)
    McKinney, G. J.
    Seeb, L. W.
    Larson, W. A.
    Gomez-Uchida, D.
    Limborg, M. T.
    Brieuc, M. S. O.
    Everett, M. V.
    Naish, K. A.
    Waples, R. K.
    Seeb, J. E.
    [J]. MOLECULAR ECOLOGY RESOURCES, 2016, 16 (03) : 769 - 783
  • [45] Not all germ cells are created equal: Aspects of sexual dimorphism in mammalian meiosis
    Morelli, MA
    Cohen, PE
    [J]. REPRODUCTION, 2005, 130 (06) : 761 - 781
  • [46] THE RELATION OF RECOMBINATION TO MUTATIONAL ADVANCE
    MULLER, HJ
    [J]. MUTATION RESEARCH, 1964, 1 (01): : 2 - 9
  • [47] Human aneuploidy: mechanisms and new insights into an age-old problem
    Nagaoka, So I.
    Hassold, Terry J.
    Hunt, Patricia A.
    [J]. NATURE REVIEWS GENETICS, 2012, 13 (07) : 493 - 504
  • [48] New and old ways to control meiotic recombination
    Phadnis, Naina
    Hyppa, Randy W.
    Smith, Gerald R.
    [J]. TRENDS IN GENETICS, 2011, 27 (10) : 411 - 421
  • [49] Construction of Ultradense Linkage Maps with Lep-MAP2: Stickleback F2 Recombinant Crosses as an Example
    Rastas, Pas
    Calboli, Federico C. F.
    Guo, Baocheng
    Shikano, Takahito
    Merila, Juha
    [J]. GENOME BIOLOGY AND EVOLUTION, 2016, 8 (01): : 78 - 93
  • [50] Centromere repositioning in mammals
    Rocchi, M.
    Archidiacono, N.
    Schempp, W.
    Capozzi, O.
    Stanyon, R.
    [J]. HEREDITY, 2012, 108 (01) : 59 - 67