Explorative genome scan to detect candidate loci for adaptation along a gradient of altitude in the common frog (Rana temporaria)

被引:251
作者
Bonin, A [1 ]
Taberlet, P
Miaud, C
Pompanon, F
机构
[1] Univ Grenoble 1, CNRS, UMR 5553, Lab Ecol Alpine, Grenoble, France
[2] Univ Savoie, CNRS, UMR 5553, Lab Ecol Alpine, Le Bourget Du Lac, France
关键词
population genomics; adaptive divergence; outlier loci; AFLP markers; Rana temporaria; selection gradient;
D O I
10.1093/molbev/msj087
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
Today, with the rapid development of population genomics, the genetic basis of adaptation can be unraveled directly at the genome level, without any prerequisites about the selectively advantageous genes or traits. For nonmodel species, it is now possible to screen many markers randomly scattered across the genome and to distinguish between the neutral genetic background and outlier loci displaying an atypical behavior (e.g., a higher differentiation between populations). This study investigated the genetic frame of adaptation to a gradient of altitude in the common frog (Rana temporaria) by means of a genome scan based on 392 amplified fragment length polymorphism markers. Using two outlier detection methods never applied to dominant data so far, we sought for loci with a genetic differentiation diverging from neutral expectations when comparing populations from different altitudes. All the detected loci were sorted out according to their most probable cause for outlier behavior and classified as false positives, outliers due to local effects, or outliers associated with altitude. Altogether, eight good candidate loci were identified as potentially involved in adaptation to altitude because they were picked out in several independent interaltitude comparisons. This result illustrated the potential of genome-wide surveys to reveal selection signatures along selection gradients, where the association between environmental variables and fitness-related traits may be complex and/or cryptic. In this article, we also underlined the need for confirmation of the selection footprints for the outlier loci. Finally, we provided some preliminary insights into the genetic basis of adaptation along an altitudinal cline in the common frog.
引用
收藏
页码:773 / 783
页数:11
相关论文
共 70 条
[11]   How to track and assess genotyping errors in population genetics studies [J].
Bonin, A ;
Bellemain, E ;
Eidesen, PB ;
Pompanon, F ;
Brochmann, C ;
Taberlet, P .
MOLECULAR ECOLOGY, 2004, 13 (11) :3261-3273
[12]   Generic scan using AFLP markers as a means to assess the role of directional selection in the divergence of sympatric whitefish ecotypes [J].
Campbell, D ;
Bernatchez, L .
MOLECULAR BIOLOGY AND EVOLUTION, 2004, 21 (05) :945-956
[13]   The genetic architecture of parallel armor plate reduction in threespine sticklebacks [J].
Colosimo, PF ;
Peichel, CL ;
Nereng, K ;
Blackman, BK ;
Shapiro, MD ;
Schluter, D ;
Kingsley, DM .
PLOS BIOLOGY, 2004, 2 (05) :635-641
[14]   Genomic evidence for divergence with gene flow in host races of the larch budmoth [J].
Emelianov, I ;
Marec, F ;
Mallet, J .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2004, 271 (1534) :97-105
[15]  
Endler J.A., 1977, Monographs in Population Biology, pi
[16]   Quantitative trait locus analyses and the study of evolutionary process [J].
Erickson, DL ;
Fenster, CB ;
Stenoien, HK ;
Price, D .
MOLECULAR ECOLOGY, 2004, 13 (09) :2505-2522
[17]  
Felsenstein J, 2005, PHYLIP PHYLOGENY INF
[18]   The genetics and genomics of insecticide resistance [J].
ffrench-Constant, RH ;
Daborn, PJ ;
Le Goff, G .
TRENDS IN GENETICS, 2004, 20 (03) :163-170
[19]   Finding the molecular basis of quantitative traits: Successes and pitfalls [J].
Flint, J ;
Mott, R .
NATURE REVIEWS GENETICS, 2001, 2 (06) :437-445
[20]  
Gasc J.-P., 1997, ATLAS AMPHIBIANS REP