Estimating species trees using multiple-allele DNA sequence data

被引:167
作者
Liu, Liang [1 ]
Pearl, Dennis K. [2 ]
Brumfield, Robb T. [3 ,4 ]
Edwards, Scott V. [1 ]
机构
[1] Harvard Univ, Museum Comparat Zool, Cambridge, MA 02138 USA
[2] Ohio State Univ, Dept Stat, Columbus, OH 43210 USA
[3] Louisiana State Univ, Museum Nat Sci, Baton Rouge, LA 70803 USA
[4] Louisiana State Univ, Dept Biol Sci, Baton Rouge, LA 70803 USA
关键词
Bayesian hierarchical model; coalescent theory; gene tree; species tree;
D O I
10.1111/j.1558-5646.2008.00414.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Several techniques, such as concatenation and consensus methods, are available for combining data from multiple loci to produce a single statement of phylogenetic relationships. However, when multiple alleles are sampled from individual species, it becomes more challenging to estimate relationships at the level of species, either because concatenation becomes inappropriate due to conflicts among individual gene trees, or because the species from which multiple alleles have been sampled may not form monophyletic groups in the estimated tree. We propose a Bayesian hierarchical model to reconstruct species trees from multipleallele, multilocus sequence data, building on a recently proposed method for estimating species trees from single allele multilocus data. A two-step Markov Chain Monte Carlo (MCMC) algorithm is adopted to estimate the posterior distribution of the species tree. The model is applied to estimate the posterior distribution of species trees for two multiple-allele datasets-yeast (Saccharomyces) and birds (Manacus-manakins). The estimates of the species trees using our method are consistent with those inferred from other methods and genetic markers, but in contrast to other species tree methods, it provides credible regions for the species tree. The Bayesian approach described here provides a powerful framework for statistical testing and integration of population genetics and phylogenetics.
引用
收藏
页码:2080 / 2091
页数:12
相关论文
共 57 条
[11]  
CAVALLISFORZA LL, 1964, P 11 INT C GEN, V3, P923
[12]   Summarizing a posterior distribution of trees using agreement subtrees [J].
Cranston, Karen A. ;
Rannala, Bruce .
SYSTEMATIC BIOLOGY, 2007, 56 (04) :578-590
[13]  
de Barros Lopes Miguel, 2002, FEMS Yeast Res, V1, P323, DOI 10.1016/S1567-1356(01)00051-4
[14]   Discordance of species trees with their most likely gene trees [J].
Degnan, James H. ;
Rosenberg, Noah A. .
PLOS GENETICS, 2006, 2 (05) :762-768
[15]  
Degnan JH, 2005, EVOLUTION, V59, P24
[16]   SEPARATE VERSUS COMBINED ANALYSIS OF PHYLOGENETIC EVIDENCE [J].
DEQUEIROZ, A ;
DONOGHUE, MJ ;
KIM, J .
ANNUAL REVIEW OF ECOLOGY AND SYSTEMATICS, 1995, 26 :657-681
[17]  
DEQUEIROZ A, 1993, SYST BIOL, V42, P368
[18]   High-resolution species trees without concatenation [J].
Edwards, Scott V. ;
Liu, Liang ;
Pearl, Dennis K. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (14) :5936-5941
[19]   Accuracy of coalescent likelihood estimates: Do we need more sites, more sequences, or more loci? [J].
Felsenstein, J .
MOLECULAR BIOLOGY AND EVOLUTION, 2006, 23 (03) :691-700
[20]   Species-level paraphyly and polyphyly: Frequency, causes, and consequences, with insights from animal mitochondrial DNA [J].
Funk, DJ ;
Omland, KE .
ANNUAL REVIEW OF ECOLOGY EVOLUTION AND SYSTEMATICS, 2003, 34 :397-423