Eukaryote hybrid genomes

被引:71
作者
Runemark, Anna
Vallejo-Marin, Mario
Meier, Joana I.
机构
[1] Department of Biology, Lund University, Lund
[2] Biological and Environmental Sciences, University of Stirling, Stirling
[3] St John's College, Cambridge, Cambridge
[4] Department of Zoology, University of Cambridge, Cambridge
来源
PLOS GENETICS | 2019年 / 15卷 / 11期
基金
瑞典研究理事会;
关键词
REPRODUCTIVE ISOLATION; INTERSPECIFIC HYBRIDIZATION; ASSOCIATIVE OVERDOMINANCE; ADAPTIVE INTROGRESSION; TRANSPOSABLE ELEMENTS; POPULATION-STRUCTURE; GENE-EXPRESSION; MUTATION-RATES; SIZE EVOLUTION; SPECIATION;
D O I
10.1371/journal.pgen.1008404
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Interspecific hybridization is the process where closely related mate and produce offspring with . The genomic revolution has shown that is common, and that it may represent an important source of novel . Although most interspecific hybrids are or less fit than their parents, some may survive and reproduce, enabling the of adaptive variants across the species boundary, and even result in the formation of novel . There are two main variants of hybrid species genomes: , which have one full from each parent species, and homoploid, which are a of the parent species genomes with no increase in chromosome number. The establishment of hybrid species requires the development of against parental species. Allopolyploid species often have strong intrinsic reproductive barriers due to differences in chromosome number, and homoploid hybrids can become reproductively isolated from the parent species through assortment of genetic incompatibilities. However, both types of hybrids can become further reproductively isolated, gaining extrinsic isolation barriers, by exploiting novel , relative to their parents. Hybrids represent the merging of divergent genomes and thus face problems arising from incompatible combinations of genes. Thus hybrid genomes are highly dynamic and undergo rapid evolutionary change, including genome stabilization in which selection against incompatible combinations results in of compatible ancestry block combinations within the hybrid species. The potential for rapid or makes hybrid genomes a particularly exciting subject of in evolutionary biology. Here we summarize how or hybrid species can establish and how the resulting hybrid genomes evolve.
引用
收藏
页数:22
相关论文
共 166 条
  • [61] Hybrid asexuality as a primary postzygotic barrier between nascent species: On the interconnection between asexuality, hybridization and speciation
    Janko, Karel
    Paces, Jan
    Wilkinson-Herbots, Hilde
    Costa, Rui J.
    Roslein, Jan
    Drozd, Pavel
    Iakovenko, Nataliia
    Ridl, Jakub
    Hroudova, Miluse
    Koci, Jan
    Reifova, Radka
    Slechtova, Vera
    Choleva, Lukas
    [J]. MOLECULAR ECOLOGY, 2018, 27 (01) : 248 - 263
  • [62] Functional Organization of the Genome May Shape the Species Boundary in the House Mouse
    Janousek, Vaclav
    Munclinger, Pavel
    Wang, Liuyang
    Teeter, Katherine C.
    Tucker, Priscilla K.
    [J]. MOLECULAR BIOLOGY AND EVOLUTION, 2015, 32 (05) : 1208 - 1220
  • [63] Supergene Evolution Triggered by the Introgression of a Chromosomal Inversion
    Jay, Paul
    Whibley, Annabel
    Frezal, Lise
    de Cara, Maria Angeles Rodriguez
    Nowell, Reuben W.
    Mallet, James
    Dasmahapatra, Kanchon K.
    Joron, Mathieu
    [J]. CURRENT BIOLOGY, 2018, 28 (11) : 1839 - +
  • [64] Hybrid trait speciation and Heliconius butterflies
    Jiggins, Chris D.
    Salazar, Camilo
    Linares, Mauricio
    Mavarez, Jesus
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2008, 363 (1506) : 3047 - 3054
  • [65] The Functional Basis of Wing Patterning in Heliconius Butterflies: The Molecules Behind Mimicry
    Kronforst, Marcus R.
    Papa, Riccardo
    [J]. GENETICS, 2015, 200 (01) : 1 - 19
  • [66] Kulathinal R, 2009, GMS HLTH TECHNOL ASS, V5, pe1000550
  • [67] Extensive chromosomal repatterning and the evolution of sterility barriers in hybrid sunflower species
    Lai, Z
    Nakazato, T
    Salmaso, M
    Burke, JM
    Tang, SX
    Knapp, SJ
    Rieseberg, LH
    [J]. GENETICS, 2005, 171 (01) : 291 - 303
  • [68] Rapid hybrid speciation in Darwin's finches
    Lamichhaney, Sangeet
    Han, Fan
    Webster, Matthew T.
    Andersson, Leif
    Grant, B. Rosemary
    Grant, Peter R.
    [J]. SCIENCE, 2018, 359 (6372) : 224 - 227
  • [69] Lawson D, 2012, SURG OBES RELAT DIS, V8, pe1002453
  • [70] A tutorial on how not to over-interpret STRUCTURE and ADMIXTURE bar plots
    Lawson, Daniel J.
    Van Dorp, Lucy
    Falush, Daniel
    [J]. NATURE COMMUNICATIONS, 2018, 9