Genome-Scale Phylogeny and the Detection of Systematic Biases
- 1 July 2004
- journal article
- Published by Oxford University Press (OUP) in Molecular Biology and Evolution
- Vol. 21 (7) , 1455-1458
- https://doi.org/10.1093/molbev/msh137
Abstract
Phylogenetic inference from sequences can be misled by both sampling (stochastic) error and systematic error (nonhistorical signals where reality differs from our simplified models). A recent study of eight yeast species using 106 concatenated genes from complete genomes showed that even small internal edges of a tree received 100% bootstrap support. This effective negation of stochastic error from large data sets is important, but longer sequences exacerbate the potential for biases (systematic error) to be positively misleading. Indeed, when we analyzed the same data set using minimum evolution optimality criteria, an alternative tree received 100% bootstrap support. We identified a compositional bias as responsible for this inconsistency and showed that it is reduced effectively by coding the nucleotides as purines and pyrimidines (RY-coding), reinforcing the original tree. Thus, a comprehensive exploration of potential systematic biases is still required, even though genome-scale data sets greatly reduce sampling error.Keywords
This publication has 22 references indexed in Scilit:
- Four New Avian Mitochondrial Genomes Help Get to Basic Evolutionary Questions in the Late CretaceousMolecular Biology and Evolution, 2004
- Comment on "Hexapod Origins: Monophyletic or Paraphyletic?"Science, 2003
- A new phylogenetic marker, apolipoprotein B, provides compelling evidence for eutherian relationshipsMolecular Phylogenetics and Evolution, 2003
- Molecular Phylogeny of Living Xenarthrans and the Impact of Character and Taxon Sampling on the Placental Tree RootingMolecular Biology and Evolution, 2002
- Heterotachy, an Important Process of Protein EvolutionMolecular Biology and Evolution, 2002
- Archaea sister group of Bacteria? Indications from tree reconstruction artifacts in ancient phylogeniesMolecular Biology and Evolution, 1999
- Approaches for Assessing Phylogenetic AccuracySystematic Biology, 1995
- Hadamard conjugation: A versatile tool for modelling nucleotide sequence evolutionNew Zealand Journal of Botany, 1993
- Invariants of phylogenies in a simple case with discrete statesJournal of Classification, 1987
- Confidence Limits on Phylogenies: An Approach Using the BootstrapEvolution, 1985