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Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria

The molecular clock of mitochondrial DNA has been extensively used to date various genetic events. However, its substitution rate among humans appears to be higher than rates inferred from human-chimpanzee comparisons, limiting the potential of interspecies clock calibrations for intraspecific datin...

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Autores principales: Loogväli, Eva-Liis, Kivisild, Toomas, Margus, Tõnu, Villems, Richard
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2794369/
https://www.ncbi.nlm.nih.gov/pubmed/20041137
http://dx.doi.org/10.1371/journal.pone.0008260
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author Loogväli, Eva-Liis
Kivisild, Toomas
Margus, Tõnu
Villems, Richard
author_facet Loogväli, Eva-Liis
Kivisild, Toomas
Margus, Tõnu
Villems, Richard
author_sort Loogväli, Eva-Liis
collection PubMed
description The molecular clock of mitochondrial DNA has been extensively used to date various genetic events. However, its substitution rate among humans appears to be higher than rates inferred from human-chimpanzee comparisons, limiting the potential of interspecies clock calibrations for intraspecific dating. It is not well understood how and why the substitution rate accelerates. We have analyzed a phylogenetic tree of 3057 publicly available human mitochondrial DNA coding region sequences for changes in the ratios of mutations belonging to different functional classes. The proportion of non-synonymous and RNA genes substitutions has reduced over hundreds of thousands of years. The highest mutation ratios corresponding to fast acceleration in the apparent substitution rate of the coding sequence have occurred after the end of the Last Ice Age. We recalibrate the molecular clock of human mtDNA as 7990 years per synonymous mutation over the mitochondrial genome. However, the distribution of substitutions at synonymous sites in human data significantly departs from a model assuming a single rate parameter and implies at least 3 different subclasses of sites. Neutral model with 3 synonymous substitution rates can explain most, if not all, of the apparent molecular clock difference between the intra- and interspecies levels. Our findings imply the sluggishness of purifying selection in removing the slightly deleterious mutations from the human as well as the Neandertal and chimpanzee populations. However, for humans, the weakness of purifying selection has been further exacerbated by the population expansions associated with the out-of Africa migration and the end of the Last Ice Age.
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spelling pubmed-27943692009-12-30 Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria Loogväli, Eva-Liis Kivisild, Toomas Margus, Tõnu Villems, Richard PLoS One Research Article The molecular clock of mitochondrial DNA has been extensively used to date various genetic events. However, its substitution rate among humans appears to be higher than rates inferred from human-chimpanzee comparisons, limiting the potential of interspecies clock calibrations for intraspecific dating. It is not well understood how and why the substitution rate accelerates. We have analyzed a phylogenetic tree of 3057 publicly available human mitochondrial DNA coding region sequences for changes in the ratios of mutations belonging to different functional classes. The proportion of non-synonymous and RNA genes substitutions has reduced over hundreds of thousands of years. The highest mutation ratios corresponding to fast acceleration in the apparent substitution rate of the coding sequence have occurred after the end of the Last Ice Age. We recalibrate the molecular clock of human mtDNA as 7990 years per synonymous mutation over the mitochondrial genome. However, the distribution of substitutions at synonymous sites in human data significantly departs from a model assuming a single rate parameter and implies at least 3 different subclasses of sites. Neutral model with 3 synonymous substitution rates can explain most, if not all, of the apparent molecular clock difference between the intra- and interspecies levels. Our findings imply the sluggishness of purifying selection in removing the slightly deleterious mutations from the human as well as the Neandertal and chimpanzee populations. However, for humans, the weakness of purifying selection has been further exacerbated by the population expansions associated with the out-of Africa migration and the end of the Last Ice Age. Public Library of Science 2009-12-29 /pmc/articles/PMC2794369/ /pubmed/20041137 http://dx.doi.org/10.1371/journal.pone.0008260 Text en Loogvali et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Loogväli, Eva-Liis
Kivisild, Toomas
Margus, Tõnu
Villems, Richard
Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria
title Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria
title_full Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria
title_fullStr Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria
title_full_unstemmed Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria
title_short Explaining the Imperfection of the Molecular Clock of Hominid Mitochondria
title_sort explaining the imperfection of the molecular clock of hominid mitochondria
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2794369/
https://www.ncbi.nlm.nih.gov/pubmed/20041137
http://dx.doi.org/10.1371/journal.pone.0008260
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