Whole-genome duplication in teleost fishes and its evolutionary consequences

被引:0
作者
Stella M. K. Glasauer
Stephan C. F. Neuhauss
机构
[1] University of Zurich,Institute of Molecular Life Sciences
[2] University of Zurich,Life Science Zurich Graduate School
来源
Molecular Genetics and Genomics | 2014年 / 289卷
关键词
Gene pairs; Paralogue; Subfunctionalization; Neofunctionalization; Radiation;
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学科分类号
摘要
Whole-genome duplication (WGD) events have shaped the history of many evolutionary lineages. One such duplication has been implicated in the evolution of teleost fishes, by far the most species-rich vertebrate clade. After initial controversy, there is now solid evidence that such event took place in the common ancestor of all extant teleosts. It is termed teleost-specific (TS) WGD. After WGD, duplicate genes have different fates. The most likely outcome is non-functionalization of one duplicate gene due to the lack of selective constraint on preserving both. Mechanisms that act on preservation of duplicates are subfunctionalization (partitioning of ancestral gene functions on the duplicates), neofunctionalization (assigning a novel function to one of the duplicates) and dosage selection (preserving genes to maintain dosage balance between interconnected components). Since the frequency of these mechanisms is influenced by the genes’ properties, there are over-retained classes of genes, such as highly expressed ones and genes involved in neural function. The consequences of the TS-WGD, especially its impact on the massive radiation of teleosts, have been matter of controversial debate. It is evident that gene duplications are crucial for generating complexity and that WGDs provide large amounts of raw material for evolutionary adaptation and innovation. However, it is less clear whether the TS-WGD is directly linked to the evolutionary success of teleosts and their radiation. Recent studies let us conclude that TS-WGD has been important in generating teleost complexity, but that more recent ecological adaptations only marginally related to TS-WGD might have even contributed more to diversification. It is likely, however, that TS-WGD provided teleosts with diversification potential that can become effective much later, such as during phases of environmental change.
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页码:1045 / 1060
页数:15
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  • [91] Aiach N(2004)Two forms of vitellogenin, yielding two distinct lipovitellins, play different roles during oocyte maturation and early development of barfin flounder, Verasper moseri, a marine teleost that spawns pelagic eggs Mol Biol Evol 21 1042-1071
  • [92] Arnaiz O(1996)Consequences of Hox gene duplication in the vertebrates: an investigation of the zebrafish Hox paralogue group 1 genes Mol Phylogenet Evol 5 309-667
  • [93] Billaut A(2005)Expansion of the Mol Biol Evol 22 2444-876
  • [94] Beisson J(2004) gene family in the teleost clade Genome Res 14 820-345
  • [95] Blanc I(2012)Evolution of sarcomeric myosin heavy chain genes: evidence from fish Proc Natl Acad Sci USA 109 13698-942
  • [96] Bouhouche K(1988)Evidence for four Hox clusters in the killifish Nucleic Acids Res 16 9097-572
  • [97] Camara F(2004) (teleostei) Genome Res 14 354-153
  • [98] Duharcourt S(1970)Gene conversion and the evolution of three leucine-rich repeat gene families in Trans Am Fish Soc 99 120-8338
  • [99] Guigo R(1967)A medaka gene map: the trace of ancestral vertebrate proto-chromosomes revealed by comparative gene mapping Chromosoma 23 1-867
  • [100] Gogendeau D(2003)Resolution of ray-finned fish phylogeny and timing of diversification Trends Genet 19 141-564