Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.

Most mutations are deleterious and require energetically costly repairs. Therefore, it seems that any minimization of mutation rate is beneficial. On the other hand, mutations generate genetic diversity indispensable for evolution and adaptation of organisms to changing environmental conditions. Thu...

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Main Authors: Paweł Błażej, Błażej Miasojedow, Małgorzata Grabińska, Paweł Mackiewicz
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4488281?pdf=render
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spelling doaj-d05a9ad2932245edaf0580a2ccd93da52020-11-24T21:10:44ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01106e013041110.1371/journal.pone.0130411Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.Paweł BłażejBłażej MiasojedowMałgorzata GrabińskaPaweł MackiewiczMost mutations are deleterious and require energetically costly repairs. Therefore, it seems that any minimization of mutation rate is beneficial. On the other hand, mutations generate genetic diversity indispensable for evolution and adaptation of organisms to changing environmental conditions. Thus, it is expected that a spontaneous mutational pressure should be an optimal compromise between these two extremes. In order to study the optimization of the pressure, we compared mutational transition probability matrices from bacterial genomes with artificial matrices fulfilling the same general features as the real ones, e.g., the stationary distribution and the speed of convergence to the stationarity. The artificial matrices were optimized on real protein-coding sequences based on Evolutionary Strategies approach to minimize or maximize the probability of non-synonymous substitutions and costs of amino acid replacements depending on their physicochemical properties. The results show that the empirical matrices have a tendency to minimize the effects of mutations rather than maximize their costs on the amino acid level. They were also similar to the optimized artificial matrices in the nucleotide substitution pattern, especially the high transitions/transversions ratio. We observed no substantial differences between the effects of mutational matrices on protein-coding sequences in genomes under study in respect of differently replicated DNA strands, mutational cost types and properties of the referenced artificial matrices. The findings indicate that the empirical mutational matrices are rather adapted to minimize mutational costs in the studied organisms in comparison to other matrices with similar mathematical constraints.http://europepmc.org/articles/PMC4488281?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Paweł Błażej
Błażej Miasojedow
Małgorzata Grabińska
Paweł Mackiewicz
spellingShingle Paweł Błażej
Błażej Miasojedow
Małgorzata Grabińska
Paweł Mackiewicz
Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.
PLoS ONE
author_facet Paweł Błażej
Błażej Miasojedow
Małgorzata Grabińska
Paweł Mackiewicz
author_sort Paweł Błażej
title Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.
title_short Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.
title_full Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.
title_fullStr Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.
title_full_unstemmed Optimization of Mutation Pressure in Relation to Properties of Protein-Coding Sequences in Bacterial Genomes.
title_sort optimization of mutation pressure in relation to properties of protein-coding sequences in bacterial genomes.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Most mutations are deleterious and require energetically costly repairs. Therefore, it seems that any minimization of mutation rate is beneficial. On the other hand, mutations generate genetic diversity indispensable for evolution and adaptation of organisms to changing environmental conditions. Thus, it is expected that a spontaneous mutational pressure should be an optimal compromise between these two extremes. In order to study the optimization of the pressure, we compared mutational transition probability matrices from bacterial genomes with artificial matrices fulfilling the same general features as the real ones, e.g., the stationary distribution and the speed of convergence to the stationarity. The artificial matrices were optimized on real protein-coding sequences based on Evolutionary Strategies approach to minimize or maximize the probability of non-synonymous substitutions and costs of amino acid replacements depending on their physicochemical properties. The results show that the empirical matrices have a tendency to minimize the effects of mutations rather than maximize their costs on the amino acid level. They were also similar to the optimized artificial matrices in the nucleotide substitution pattern, especially the high transitions/transversions ratio. We observed no substantial differences between the effects of mutational matrices on protein-coding sequences in genomes under study in respect of differently replicated DNA strands, mutational cost types and properties of the referenced artificial matrices. The findings indicate that the empirical mutational matrices are rather adapted to minimize mutational costs in the studied organisms in comparison to other matrices with similar mathematical constraints.
url http://europepmc.org/articles/PMC4488281?pdf=render
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