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Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches

Cotton is one of the most important economic crops and the primary source of natural fiber and is an important protein source for animal feed. The complete nuclear and chloroplast (cp) genome sequences of G. raimondii are already available but not mitochondria. Here, we assembled the complete mitoch...

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Autores principales: Bi, Changwei, Paterson, Andrew H., Wang, Xuelin, Xu, Yiqing, Wu, Dongyang, Qu, Yanshu, Jiang, Anna, Ye, Qiaolin, Ye, Ning
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5099484/
https://www.ncbi.nlm.nih.gov/pubmed/27847816
http://dx.doi.org/10.1155/2016/5040598
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author Bi, Changwei
Paterson, Andrew H.
Wang, Xuelin
Xu, Yiqing
Wu, Dongyang
Qu, Yanshu
Jiang, Anna
Ye, Qiaolin
Ye, Ning
author_facet Bi, Changwei
Paterson, Andrew H.
Wang, Xuelin
Xu, Yiqing
Wu, Dongyang
Qu, Yanshu
Jiang, Anna
Ye, Qiaolin
Ye, Ning
author_sort Bi, Changwei
collection PubMed
description Cotton is one of the most important economic crops and the primary source of natural fiber and is an important protein source for animal feed. The complete nuclear and chloroplast (cp) genome sequences of G. raimondii are already available but not mitochondria. Here, we assembled the complete mitochondrial (mt) DNA sequence of G. raimondii into a circular genome of length of 676,078 bp and performed comparative analyses with other higher plants. The genome contains 39 protein-coding genes, 6 rRNA genes, and 25 tRNA genes. We also identified four larger repeats (63.9 kb, 10.6 kb, 9.1 kb, and 2.5 kb) in this mt genome, which may be active in intramolecular recombination in the evolution of cotton. Strikingly, nearly all of the G. raimondii mt genome has been transferred to nucleus on Chr1, and the transfer event must be very recent. Phylogenetic analysis reveals that G. raimondii, as a member of Malvaceae, is much closer to another cotton (G. barbadense) than other rosids, and the clade formed by two Gossypium species is sister to Brassicales. The G. raimondii mt genome may provide a crucial foundation for evolutionary analysis, molecular biology, and cytoplasmic male sterility in cotton and other higher plants.
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spelling pubmed-50994842016-11-15 Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches Bi, Changwei Paterson, Andrew H. Wang, Xuelin Xu, Yiqing Wu, Dongyang Qu, Yanshu Jiang, Anna Ye, Qiaolin Ye, Ning Biomed Res Int Research Article Cotton is one of the most important economic crops and the primary source of natural fiber and is an important protein source for animal feed. The complete nuclear and chloroplast (cp) genome sequences of G. raimondii are already available but not mitochondria. Here, we assembled the complete mitochondrial (mt) DNA sequence of G. raimondii into a circular genome of length of 676,078 bp and performed comparative analyses with other higher plants. The genome contains 39 protein-coding genes, 6 rRNA genes, and 25 tRNA genes. We also identified four larger repeats (63.9 kb, 10.6 kb, 9.1 kb, and 2.5 kb) in this mt genome, which may be active in intramolecular recombination in the evolution of cotton. Strikingly, nearly all of the G. raimondii mt genome has been transferred to nucleus on Chr1, and the transfer event must be very recent. Phylogenetic analysis reveals that G. raimondii, as a member of Malvaceae, is much closer to another cotton (G. barbadense) than other rosids, and the clade formed by two Gossypium species is sister to Brassicales. The G. raimondii mt genome may provide a crucial foundation for evolutionary analysis, molecular biology, and cytoplasmic male sterility in cotton and other higher plants. Hindawi Publishing Corporation 2016 2016-10-25 /pmc/articles/PMC5099484/ /pubmed/27847816 http://dx.doi.org/10.1155/2016/5040598 Text en Copyright © 2016 Changwei Bi et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Bi, Changwei
Paterson, Andrew H.
Wang, Xuelin
Xu, Yiqing
Wu, Dongyang
Qu, Yanshu
Jiang, Anna
Ye, Qiaolin
Ye, Ning
Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches
title Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches
title_full Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches
title_fullStr Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches
title_full_unstemmed Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches
title_short Analysis of the Complete Mitochondrial Genome Sequence of the Diploid Cotton Gossypium raimondii by Comparative Genomics Approaches
title_sort analysis of the complete mitochondrial genome sequence of the diploid cotton gossypium raimondii by comparative genomics approaches
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5099484/
https://www.ncbi.nlm.nih.gov/pubmed/27847816
http://dx.doi.org/10.1155/2016/5040598
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