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A Bayesian Phylogenetic Method to Estimate Unknown Sequence Ages
Author(s) -
Beth Shapiro,
Simon Y. W. Ho,
Alexei J. Drummond,
Marc A. Suchard,
Oliver G. Pybus,
Andrew Rambaut
Publication year - 2010
Publication title -
molecular biology and evolution
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.637
H-Index - 218
eISSN - 1537-1719
pISSN - 0737-4038
DOI - 10.1093/molbev/msq262
Subject(s) - biology , phylogenetic tree , bayesian probability , sequence (biology) , molecular clock , sampling (signal processing) , range (aeronautics) , set (abstract data type) , data set , tree (set theory) , probabilistic logic , evolutionary biology , mutation , calibration , statistics , genetics , mathematics , computer science , gene , mathematical analysis , materials science , filter (signal processing) , composite material , computer vision , programming language
Heterochronous data sets comprise molecular sequences sampled at different points in time. If the temporal range of the sampled sequences is large relative to the rate of mutation, the sampling times can directly calibrate evolutionary rates to calendar time. Here, we extend this calibration process to provide a full probabilistic method that utilizes temporal information in heterochronous data sets to estimate sampling times (leaf-ages) for sequenced for which this information unavailable. Our method is similar to relaxing the constraints of the molecular clock on specific lineages within a phylogenetic tree. Using a combination of synthetic and empirical data sets, we demonstrate that the method estimates leaf-ages reliably and accurately. Potential applications of our approach include incorporating samples of uncertain or radiocarbon-infinite age into ancient DNA analyses, evaluating the temporal signal in a particular sequence or data set, and exploring the reliability of sequence ages that are somehow contentious.

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