Genomic analysis of adaptive differentiation in Drosophila melanogaster

被引:120
|
作者
Turner, Thomas L. [1 ]
Levine, Mia T. [1 ]
Eckert, Melissa L. [1 ]
Begun, David J. [1 ]
机构
[1] Univ Calif Davis, Ctr Populat Biol, Davis, CA 95616 USA
关键词
D O I
10.1534/genetics.107.083659
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Drosophila melanogaster shows clinal variation along latitudinal transects on multiple continents for several phenotypes, allozyme variants, sequence variants, and chromosome inversions. Previous investigation suggests that many such clines are due to spatially varying selection rather than demographic history, but the genomic extent of such selection is unknown. To map differentiation throughout the genome, we hybridized DNA from temperate and subtropical populations to Affymetrix tiling arrays. The dense genomic sampling of variants and low level of linkage disequilibrium in D. melanogaster enabled identification of many small, differentiated regions. Many regions are differentiated in parallel in the United States and Australia, strongly supporting the idea that they are influenced by spatially varying selection. Genomic differentiation is distributed nonrandomly with respect to gene function, even in regions differentiated on only one continent, providing further evidence for the role of selection. These data provide candidate genes for phenotypes known to vary clinally and implicate interesting new processes in genotype-by-environment interactions, including chorion proteins, proteins regulating meiotic recombination and segregation, gustatory and olfactory receptors, and proteins affecting synaptic function and behavior. This portrait of differentiation provides a genomic perspective on adaptation and the maintenance of variation through spatially varying selection.
引用
收藏
页码:455 / 473
页数:19
相关论文
共 50 条
  • [21] Genomic Imprinting Absent in Drosophila melanogaster Adult Females
    Coolon, Joseph D.
    Stevenson, Kraig R.
    McManus, C. Joel
    Graveley, Brenton R.
    Wittkopp, Patricia J.
    CELL REPORTS, 2012, 2 (01): : 69 - 75
  • [22] Genomic and cDNA sequence of prophenoloxidases from Drosophila melanogaster
    Chase, MR
    Sugumaran, M
    PHYLOGENETIC PERSPECTIVES ON THE VERTEBRATE IMMUNE SYSTEM, 2001, 484 : 349 - 362
  • [23] Genomic organization of gypsy chromatin insulators in Drosophila melanogaster
    Ramos, E
    Ghosh, D
    Baxter, E
    Corces, VG
    GENETICS, 2006, 172 (04) : 2337 - 2349
  • [24] Genomic and functional evolution of the Drosophila melanogaster sperm proteome
    Steve Dorus
    Scott A Busby
    Ursula Gerike
    Jeffrey Shabanowitz
    Donald F Hunt
    Timothy L Karr
    Nature Genetics, 2006, 38 : 1440 - 1445
  • [25] Genomic signatures of domestication on neurogenetic genes in Drosophila melanogaster
    Craig E. Stanley
    Rob J. Kulathinal
    BMC Evolutionary Biology, 16
  • [26] Transcriptomic Analysis of Sexual Differentiation in Somatic Tissues of Drosophila melanogaster: Successes and Caveats
    Samson, M. -L.
    Rabinow, L.
    SEXUAL DEVELOPMENT, 2014, 8 (1-3) : 113 - 126
  • [27] Genomic and functional evolution of the Drosophila melanogaster sperm proteome
    Dorus, Steve
    Busby, Scott A.
    Gerike, Ursula
    Shabanowitz, Jeffrey
    Hunt, Donald F.
    Karr, Timothy L.
    NATURE GENETICS, 2006, 38 (12) : 1440 - 1445
  • [28] Epigenomic and genomic landscape of Drosophila melanogaster heterochromatic genes
    Saha, Parna
    Sowpati, Divya Tej
    Mishra, Rakesh K.
    GENOMICS, 2019, 111 (02) : 177 - 185
  • [29] A NOVEL TYPE OF GENOMIC INSTABILITY IN DROSOPHILA-MELANOGASTER
    GEORGIEV, PG
    SIMONOVA, OB
    GERASIMOVA, TI
    GENETIKA, 1988, 24 (05): : 867 - 877
  • [30] The recent demographic and adaptive history of Drosophila melanogaster
    W Stephan
    H Li
    Heredity, 2007, 98 : 65 - 68