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Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome

A single recessive gene, rxp, on linkage group (LG) D2 controls bacterial leaf-pustule resistance in soybean. We identified two homoeologous contigs (GmA and GmA′) composed of five bacterial artificial chromosomes (BACs) during the selection of BAC clones around Rxp region. With the recombinant inbr...

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Autores principales: Van, Kyujung, Kim, Dong Hyun, Cai, Chun Mei, Kim, Moon Young, Shin, Jin Hee, Graham, Michelle A., Shoemaker, Randy C., Choi, Beom-Soon, Yang, Tae-Jin, Lee, Suk-Ha
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2650623/
https://www.ncbi.nlm.nih.gov/pubmed/18334514
http://dx.doi.org/10.1093/dnares/dsn001
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author Van, Kyujung
Kim, Dong Hyun
Cai, Chun Mei
Kim, Moon Young
Shin, Jin Hee
Graham, Michelle A.
Shoemaker, Randy C.
Choi, Beom-Soon
Yang, Tae-Jin
Lee, Suk-Ha
author_facet Van, Kyujung
Kim, Dong Hyun
Cai, Chun Mei
Kim, Moon Young
Shin, Jin Hee
Graham, Michelle A.
Shoemaker, Randy C.
Choi, Beom-Soon
Yang, Tae-Jin
Lee, Suk-Ha
author_sort Van, Kyujung
collection PubMed
description A single recessive gene, rxp, on linkage group (LG) D2 controls bacterial leaf-pustule resistance in soybean. We identified two homoeologous contigs (GmA and GmA′) composed of five bacterial artificial chromosomes (BACs) during the selection of BAC clones around Rxp region. With the recombinant inbred line population from the cross of Pureunkong and Jinpumkong 2, single-nucleotide polymorphism and simple sequence repeat marker genotyping were able to locate GmA′ on LG A1. On the basis of information in the Soybean Breeders Toolbox and our results, parts of LG A1 and LG D2 share duplicated regions. Alignment and annotation revealed that many homoeologous regions contained kinases and proteins related to signal transduction pathway. Interestingly, inserted sequences from GmA and GmA′ had homology with transposase and integrase. Estimation of evolutionary events revealed that speciation of soybean from Medicago and the recent divergence of two soybean homoeologous regions occurred at 60 and 12 million years ago, respectively. Distribution of synonymous substitution patterns, K(s), yielded a first secondary peak (mode K(s) = 0.10–0.15) followed by two smaller bulges were displayed between soybean homologous regions. Thus, diploidized paleopolyploidy of soybean genome was again supported by our study.
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spelling pubmed-26506232009-04-13 Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome Van, Kyujung Kim, Dong Hyun Cai, Chun Mei Kim, Moon Young Shin, Jin Hee Graham, Michelle A. Shoemaker, Randy C. Choi, Beom-Soon Yang, Tae-Jin Lee, Suk-Ha DNA Res Full Papers A single recessive gene, rxp, on linkage group (LG) D2 controls bacterial leaf-pustule resistance in soybean. We identified two homoeologous contigs (GmA and GmA′) composed of five bacterial artificial chromosomes (BACs) during the selection of BAC clones around Rxp region. With the recombinant inbred line population from the cross of Pureunkong and Jinpumkong 2, single-nucleotide polymorphism and simple sequence repeat marker genotyping were able to locate GmA′ on LG A1. On the basis of information in the Soybean Breeders Toolbox and our results, parts of LG A1 and LG D2 share duplicated regions. Alignment and annotation revealed that many homoeologous regions contained kinases and proteins related to signal transduction pathway. Interestingly, inserted sequences from GmA and GmA′ had homology with transposase and integrase. Estimation of evolutionary events revealed that speciation of soybean from Medicago and the recent divergence of two soybean homoeologous regions occurred at 60 and 12 million years ago, respectively. Distribution of synonymous substitution patterns, K(s), yielded a first secondary peak (mode K(s) = 0.10–0.15) followed by two smaller bulges were displayed between soybean homologous regions. Thus, diploidized paleopolyploidy of soybean genome was again supported by our study. Oxford University Press 2008-04 2008-03-11 /pmc/articles/PMC2650623/ /pubmed/18334514 http://dx.doi.org/10.1093/dnares/dsn001 Text en © The Author 2008. Kazusa DNA Research Institute
spellingShingle Full Papers
Van, Kyujung
Kim, Dong Hyun
Cai, Chun Mei
Kim, Moon Young
Shin, Jin Hee
Graham, Michelle A.
Shoemaker, Randy C.
Choi, Beom-Soon
Yang, Tae-Jin
Lee, Suk-Ha
Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome
title Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome
title_full Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome
title_fullStr Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome
title_full_unstemmed Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome
title_short Sequence Level Analysis of Recently Duplicated Regions in Soybean [Glycine max (L.) Merr.] Genome
title_sort sequence level analysis of recently duplicated regions in soybean [glycine max (l.) merr.] genome
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2650623/
https://www.ncbi.nlm.nih.gov/pubmed/18334514
http://dx.doi.org/10.1093/dnares/dsn001
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