Literature DB >> 28204787

Inference of Evolutionary Jumps in Large Phylogenies using Lévy Processes.

Pablo Duchen1, Christoph Leuenberger1,2, Sándor M Szilágyi3,4,5, Luke Harmon6, Jonathan Eastman6, Manuel Schweizer7, Daniel Wegmann1.   

Abstract

Although it is now widely accepted that the rate of phenotypic evolution may not necessarily be constant across large phylogenies, the frequency and phylogenetic position of periods of rapid evolution remain unclear. In his highly influential view of evolution, G. G. Simpson supposed that such evolutionary jumps occur when organisms transition into so-called new adaptive zones, for instance after dispersal into a new geographic area, after rapid climatic changes, or following the appearance of an evolutionary novelty. Only recently, large, accurate and well calibrated phylogenies have become available that allow testing this hypothesis directly, yet inferring evolutionary jumps remains computationally very challenging. Here, we develop a computationally highly efficient algorithm to accurately infer the rate and strength of evolutionary jumps as well as their phylogenetic location. Following previous work we model evolutionary jumps as a compound process, but introduce a novel approach to sample jump configurations that does not require matrix inversions and thus naturally scales to large trees. We then make use of this development to infer evolutionary jumps in Anolis lizards and Loriinii parrots where we find strong signal for such jumps at the basis of clades that transitioned into new adaptive zones, just as postulated by Simpson's hypothesis. [evolutionary jump; Lévy process; phenotypic evolution; punctuated equilibrium; quantitative traits. The Author(s) 2017. Published by Oxford University Press, on behalf of the Society of Systematic Biologists.

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Year:  2017        PMID: 28204787      PMCID: PMC5790141          DOI: 10.1093/sysbio/syx028

Source DB:  PubMed          Journal:  Syst Biol        ISSN: 1063-5157            Impact factor:   15.683


  28 in total

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3.  Body size diversification in anolis: novel environment and island effects.

Authors:  Gavin H Thomas; Shai Meiri; Albert B Phillimore
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5.  Modeling gene expression evolution with an extended Ornstein-Uhlenbeck process accounting for within-species variation.

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6.  Contingency and determinism in replicated adaptive radiations of island lizards

Authors: 
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7.  A NEO-DARWINIAN COMMENTARY ON MACROEVOLUTION.

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Journal:  Evolution       Date:  1982-05       Impact factor: 3.694

8.  Phylogenetic analysis using Lévy processes: finding jumps in the evolution of continuous traits.

Authors:  Michael J Landis; Joshua G Schraiber; Mason Liang
Journal:  Syst Biol       Date:  2012-10-03       Impact factor: 15.683

9.  A linear-time algorithm for Gaussian and non-Gaussian trait evolution models.

Authors:  Lam si Tung Ho; Cécile Ané
Journal:  Syst Biol       Date:  2014-02-04       Impact factor: 15.683

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Authors:  J Felsenstein
Journal:  Am J Hum Genet       Date:  1973-09       Impact factor: 11.025

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  9 in total

Review 1.  Phylogenetic tests for evolutionary innovation: the problematic link between key innovations and exceptional diversification.

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4.  Pulsed evolution shaped modern vertebrate body sizes.

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5.  Adaptive evolution shapes the present-day distribution of the thermal sensitivity of population growth rate.

Authors:  Dimitrios-Georgios Kontopoulos; Thomas P Smith; Timothy G Barraclough; Samraat Pawar
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6.  Trophic niche shifts and phenotypic trait evolution are largely decoupled in Australasian parrots.

Authors:  Vicente García-Navas; Joseph A Tobias; Manuel Schweizer; Daniel Wegmann; Richard Schodde; Janette A Norman; Les Christidis
Journal:  BMC Ecol Evol       Date:  2021-11-27

7.  A positive correlation between GC content and growth temperature in prokaryotes.

Authors:  En-Ze Hu; Xin-Ran Lan; Zhi-Ling Liu; Jie Gao; Deng-Ke Niu
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8.  Evolutionary jumps in bacterial GC content.

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Journal:  G3 (Bethesda)       Date:  2022-07-29       Impact factor: 3.542

9.  Topographically distinct adaptive landscapes for teeth, skeletons, and size explain the adaptive radiation of Carnivora (Mammalia).

Authors:  Graham J Slater
Journal:  Evolution       Date:  2022-08-02       Impact factor: 4.171

  9 in total

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