Experimental evolution, loss-of-function mutations, and “the first rule of adaptive evolution”

Adaptive evolution can cause a species to gain, lose, or modify a function; therefore, it is of basic interest to determine whether any of these modes dominates the evolutionary process under particular circumstances. Because mutation occurs at the molecular level, it is necessary to examine the mol...

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Veröffentlicht in:The Quarterly review of biology 2010-12, Vol.85 (4), p.419-445
1. Verfasser: Behe, Michael J.
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description Adaptive evolution can cause a species to gain, lose, or modify a function; therefore, it is of basic interest to determine whether any of these modes dominates the evolutionary process under particular circumstances. Because mutation occurs at the molecular level, it is necessary to examine the molecular changes produced by the underlying mutation in order to assess whether a given adaptation is best considered as a gain, loss, or modification of function. Although that was once impossible, the advance of molecular biology in the past half century has made it feasible. In this paper, I review molecular changes underlying some adaptations, with a particular emphasis on evolutionary experiments with microbes conducted over the past four decades. I show that by far the most common adaptive changes seen in those examples are due to the loss or modification of a pre-existing molecular function, and I discuss the possible reasons for the prominence of such mutations.
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subjects Adaptation, Physiological
Bacteria - genetics
Bacteria - metabolism
Bacteriophages
Biological Evolution
Biology
Directed Molecular Evolution
Ecological competition
Evolution
Evolution & development
Genes
Genetic mutation
Hemoglobins
Microorganisms
Molecular biology
Molecular structure
Mutation
Nucleotides
Point mutation
Viruses
Viruses - genetics
Viruses - metabolism
title Experimental evolution, loss-of-function mutations, and “the first rule of adaptive evolution”
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