Families of transposable elements, population structure and the origin of species

<p>Abstract</p> <p>Background</p> <p>Eukaryotic genomes harbor diverse families of repetitive DNA derived from transposable elements (TEs) that are able to replicate and insert into genomic DNA. The biological role of TEs remains unclear, although they have profound mut...

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Main Authors: Kojima Kenji K, Bao Weidong, Jurka Jerzy
Format: Article
Language:English
Published: BMC 2011-09-01
Series:Biology Direct
Online Access:http://www.biology-direct.com/content/6/1/44
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spelling doaj-ddaf5e9aebb345e7bfbaca2a87ed38362020-11-25T00:21:03ZengBMCBiology Direct1745-61502011-09-01614410.1186/1745-6150-6-44Families of transposable elements, population structure and the origin of speciesKojima Kenji KBao WeidongJurka Jerzy<p>Abstract</p> <p>Background</p> <p>Eukaryotic genomes harbor diverse families of repetitive DNA derived from transposable elements (TEs) that are able to replicate and insert into genomic DNA. The biological role of TEs remains unclear, although they have profound mutagenic impact on eukaryotic genomes and the origin of repetitive families often correlates with speciation events. We present a new hypothesis to explain the observed correlations based on classical concepts of population genetics.</p> <p>Presentation of the hypothesis</p> <p>The main thesis presented in this paper is that the TE-derived repetitive families originate primarily by genetic drift in small populations derived mostly by subdivisions of large populations into subpopulations. We outline the potential impact of the emerging repetitive families on genetic diversification of different subpopulations, and discuss implications of such diversification for the origin of new species.</p> <p>Testing the hypothesis</p> <p>Several testable predictions of the hypothesis are examined. First, we focus on the prediction that the number of diverse families of TEs fixed in a representative genome of a particular species positively correlates with the cumulative number of subpopulations (demes) in the historical metapopulation from which the species has emerged. Furthermore, we present evidence indicating that human AluYa5 and AluYb8 families might have originated in separate proto-human subpopulations. We also revisit prior evidence linking the origin of repetitive families to mammalian phylogeny and present additional evidence linking repetitive families to speciation based on mammalian taxonomy. Finally, we discuss evidence that mammalian orders represented by the largest numbers of species may be subject to relatively recent population subdivisions and speciation events.</p> <p>Implications of the hypothesis</p> <p>The hypothesis implies that subdivision of a population into small subpopulations is the major step in the origin of new families of TEs as well as of new species. The origin of new subpopulations is likely to be driven by the availability of new biological niches, consistent with the hypothesis of punctuated equilibria. The hypothesis also has implications for the ongoing debate on the role of genetic drift in genome evolution.</p> <p>Reviewers</p> <p>This article was reviewed by Eugene Koonin, Juergen Brosius and I. King Jordan.</p> http://www.biology-direct.com/content/6/1/44
collection DOAJ
language English
format Article
sources DOAJ
author Kojima Kenji K
Bao Weidong
Jurka Jerzy
spellingShingle Kojima Kenji K
Bao Weidong
Jurka Jerzy
Families of transposable elements, population structure and the origin of species
Biology Direct
author_facet Kojima Kenji K
Bao Weidong
Jurka Jerzy
author_sort Kojima Kenji K
title Families of transposable elements, population structure and the origin of species
title_short Families of transposable elements, population structure and the origin of species
title_full Families of transposable elements, population structure and the origin of species
title_fullStr Families of transposable elements, population structure and the origin of species
title_full_unstemmed Families of transposable elements, population structure and the origin of species
title_sort families of transposable elements, population structure and the origin of species
publisher BMC
series Biology Direct
issn 1745-6150
publishDate 2011-09-01
description <p>Abstract</p> <p>Background</p> <p>Eukaryotic genomes harbor diverse families of repetitive DNA derived from transposable elements (TEs) that are able to replicate and insert into genomic DNA. The biological role of TEs remains unclear, although they have profound mutagenic impact on eukaryotic genomes and the origin of repetitive families often correlates with speciation events. We present a new hypothesis to explain the observed correlations based on classical concepts of population genetics.</p> <p>Presentation of the hypothesis</p> <p>The main thesis presented in this paper is that the TE-derived repetitive families originate primarily by genetic drift in small populations derived mostly by subdivisions of large populations into subpopulations. We outline the potential impact of the emerging repetitive families on genetic diversification of different subpopulations, and discuss implications of such diversification for the origin of new species.</p> <p>Testing the hypothesis</p> <p>Several testable predictions of the hypothesis are examined. First, we focus on the prediction that the number of diverse families of TEs fixed in a representative genome of a particular species positively correlates with the cumulative number of subpopulations (demes) in the historical metapopulation from which the species has emerged. Furthermore, we present evidence indicating that human AluYa5 and AluYb8 families might have originated in separate proto-human subpopulations. We also revisit prior evidence linking the origin of repetitive families to mammalian phylogeny and present additional evidence linking repetitive families to speciation based on mammalian taxonomy. Finally, we discuss evidence that mammalian orders represented by the largest numbers of species may be subject to relatively recent population subdivisions and speciation events.</p> <p>Implications of the hypothesis</p> <p>The hypothesis implies that subdivision of a population into small subpopulations is the major step in the origin of new families of TEs as well as of new species. The origin of new subpopulations is likely to be driven by the availability of new biological niches, consistent with the hypothesis of punctuated equilibria. The hypothesis also has implications for the ongoing debate on the role of genetic drift in genome evolution.</p> <p>Reviewers</p> <p>This article was reviewed by Eugene Koonin, Juergen Brosius and I. King Jordan.</p>
url http://www.biology-direct.com/content/6/1/44
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