Genetic structure, conservation genetics and evidence of speciation by range expansion in shy and white-capped albatrosses

被引:76
作者
Abbott, CL [1 ]
Double, MC [1 ]
机构
[1] Australian Natl Univ, Sch Bot & Zool, Canberra, ACT 0200, Australia
关键词
albatross; conservation; genetic diversity; microsatellites; population genetics; speciation; Thalassarche;
D O I
10.1046/j.1365-294X.2003.01980.x
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
Six variable microsatellite loci were used to examine genetic structuring in the closely related shy albatross (Thalassarche cauta) and white-capped albatross (T. steadi). First, levels of genetic differentiation between the species, and among three populations within each species, were analysed using AMOVA, F-ST and R-ST. We found high levels of genetic structuring and detected many unshared alleles between the species, which provide strong evidence against any contemporary gene flow between them. Within each species, shy albatross populations were found to be genetically distinct whereas white-capped albatross populations were undifferentiated, which implies that dispersal events are much rarer in the former than in the latter. These results formed the basis for the recommendation that the three white-capped albatross populations (as a whole) and each shy albatross population be treated as separate units for conservation. Second, levels of genetic diversity and allelic patterns in shy and white-capped albatrosses were assessed for whether they support earlier mtDNA results suggesting that shy albatrosses arose through range expansion of white-capped albatrosses. All measures indicated lower genetic diversity within shy albatrosses than within white-capped albatrosses and upheld the hypothesis that shy albatrosses were founded by white-capped albatrosses.
引用
收藏
页码:2953 / 2962
页数:10
相关论文
共 74 条
[1]   Phylogeography of shy and white-capped albatrosses inferred from mitochondrial DNA sequences: implications for population history and taxonomy [J].
Abbott, CL ;
Double, MC .
MOLECULAR ECOLOGY, 2003, 12 (10) :2747-2758
[2]   The foraging behaviour and energetics of wandering albatrosses brooding chicks [J].
Arnould, JPY ;
Briggs, DR ;
Croxall, JP ;
Prince, PA ;
Wood, AG .
ANTARCTIC SCIENCE, 1996, 8 (03) :229-236
[3]   HIERARCHICAL STRUCTURE OF MITOCHONDRIAL-DNA GENE FLOW AMONG HUMPBACK WHALES MEGAPTERA-NOVAEANGLIAE, WORLDWIDE [J].
BAKER, CS ;
SLADE, RW ;
BANNISTER, JL ;
ABERNETHY, RB ;
WEINRICH, MT ;
LIEN, J ;
URBAN, J ;
CORKERON, P ;
CALMABOKIDIS, J ;
VASQUEZ, O ;
PALUMBI, SR .
MOLECULAR ECOLOGY, 1994, 3 (04) :313-327
[4]   Albatrosses and petrels in Australia: a review of their conservation and management [J].
Baker, GB ;
Gales, R ;
Hamilton, S ;
Wilkinson, V .
EMU-AUSTRAL ORNITHOLOGY, 2002, 102 (01) :71-97
[5]  
Bartle J.A., 1991, Bird Conservation International, V1, P351
[6]  
Bass AL, 1996, MOL ECOL, V5, P321
[7]   Genetic evaluation of a demographic bottleneck in the Greater Prairie Chicken [J].
Bouzat, JL ;
Cheng, HH ;
Lewin, HA ;
Westemeier, RL ;
Brawn, JD ;
Paige, KN .
CONSERVATION BIOLOGY, 1998, 12 (04) :836-843
[8]   Foraging movements of the Shy Albatross Diomedea cauta breeding in Australia; implications for interactions with longline fisheries [J].
Brothers, N ;
Gales, R ;
Hedd, A ;
Robertson, G .
IBIS, 1998, 140 (03) :446-457
[9]   ALBATROSS MORTALITY AND ASSOCIATED BAIT LOSS IN THE JAPANESE LONGLINE FISHERY IN THE SOUTHERN-OCEAN [J].
BROTHERS, N .
BIOLOGICAL CONSERVATION, 1991, 55 (03) :255-268
[10]   Modulation of non-templated nucleotide addition by taq DNA polymerase: Primer modifications that facilitate genotyping [J].
Brownstein, MJ ;
Carpten, JD ;
Smith, JR .
BIOTECHNIQUES, 1996, 20 (06) :1004-+