Cargando…

A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck

Recently, many immune-related genes have been extensively studied in ducks, but relatively little is known about their TCR genes. Here, we determined the germline and expressed repertoire of TCR genes in White Peking duck. The genomic organization of the duck TCRα/δ, TCRγ and unconventional TCRδ2 lo...

Descripción completa

Detalles Bibliográficos
Autores principales: Yang, Zhi, Sun, Yi, Ma, Yonghe, Li, Zhenrong, Zhao, Yu, Ren, Liming, Han, Haitang, Jiang, Yunliang, Zhao, Yaofeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5278385/
https://www.ncbi.nlm.nih.gov/pubmed/28134319
http://dx.doi.org/10.1038/srep41426
_version_ 1782502639360016384
author Yang, Zhi
Sun, Yi
Ma, Yonghe
Li, Zhenrong
Zhao, Yu
Ren, Liming
Han, Haitang
Jiang, Yunliang
Zhao, Yaofeng
author_facet Yang, Zhi
Sun, Yi
Ma, Yonghe
Li, Zhenrong
Zhao, Yu
Ren, Liming
Han, Haitang
Jiang, Yunliang
Zhao, Yaofeng
author_sort Yang, Zhi
collection PubMed
description Recently, many immune-related genes have been extensively studied in ducks, but relatively little is known about their TCR genes. Here, we determined the germline and expressed repertoire of TCR genes in White Peking duck. The genomic organization of the duck TCRα/δ, TCRγ and unconventional TCRδ2 loci are highly conserved with their counterparts in mammals or chickens. By contrast, the duck TCRβ locus is organized in an unusual pattern, (Vβ)(n)-Dβ-(Jβ)(2)-Cβ1-(Jβ)(4)-Cβ2, which differs from the tandem-aligned clusters in mammals or the translocon organization in some teleosts. Excluding the first exon encoding the immunoglobulin domain, the subsequent exons of the two Cβ show significant diversity in nucleotide sequence and exon structure. Based on the nucleotide sequence identity, 49 Vα, 30 Vδ, 13 Vβ and 15 Vγ unique gene segments are classified into 3 Vα, 5 Vδ, 4 Vβ and 6 Vγ subgroups, respectively. Phylogenetic analyses revealed that most duck V subgroups, excluding Vβ1, Vγ5 and Vγ6, have closely related orthologues in chicken. The coding joints of all cDNA clones demonstrate conserved mechanisms that are used to increase junctional diversity. Collectively, these data provide insight into the evolution of TCRs in vertebrates and improve our understanding of the avian immune system.
format Online
Article
Text
id pubmed-5278385
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-52783852017-02-03 A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck Yang, Zhi Sun, Yi Ma, Yonghe Li, Zhenrong Zhao, Yu Ren, Liming Han, Haitang Jiang, Yunliang Zhao, Yaofeng Sci Rep Article Recently, many immune-related genes have been extensively studied in ducks, but relatively little is known about their TCR genes. Here, we determined the germline and expressed repertoire of TCR genes in White Peking duck. The genomic organization of the duck TCRα/δ, TCRγ and unconventional TCRδ2 loci are highly conserved with their counterparts in mammals or chickens. By contrast, the duck TCRβ locus is organized in an unusual pattern, (Vβ)(n)-Dβ-(Jβ)(2)-Cβ1-(Jβ)(4)-Cβ2, which differs from the tandem-aligned clusters in mammals or the translocon organization in some teleosts. Excluding the first exon encoding the immunoglobulin domain, the subsequent exons of the two Cβ show significant diversity in nucleotide sequence and exon structure. Based on the nucleotide sequence identity, 49 Vα, 30 Vδ, 13 Vβ and 15 Vγ unique gene segments are classified into 3 Vα, 5 Vδ, 4 Vβ and 6 Vγ subgroups, respectively. Phylogenetic analyses revealed that most duck V subgroups, excluding Vβ1, Vγ5 and Vγ6, have closely related orthologues in chicken. The coding joints of all cDNA clones demonstrate conserved mechanisms that are used to increase junctional diversity. Collectively, these data provide insight into the evolution of TCRs in vertebrates and improve our understanding of the avian immune system. Nature Publishing Group 2017-01-30 /pmc/articles/PMC5278385/ /pubmed/28134319 http://dx.doi.org/10.1038/srep41426 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Yang, Zhi
Sun, Yi
Ma, Yonghe
Li, Zhenrong
Zhao, Yu
Ren, Liming
Han, Haitang
Jiang, Yunliang
Zhao, Yaofeng
A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck
title A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck
title_full A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck
title_fullStr A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck
title_full_unstemmed A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck
title_short A comprehensive analysis of the germline and expressed TCR repertoire in White Peking duck
title_sort comprehensive analysis of the germline and expressed tcr repertoire in white peking duck
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5278385/
https://www.ncbi.nlm.nih.gov/pubmed/28134319
http://dx.doi.org/10.1038/srep41426
work_keys_str_mv AT yangzhi acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT sunyi acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT mayonghe acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT lizhenrong acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT zhaoyu acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT renliming acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT hanhaitang acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT jiangyunliang acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT zhaoyaofeng acomprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT yangzhi comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT sunyi comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT mayonghe comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT lizhenrong comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT zhaoyu comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT renliming comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT hanhaitang comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT jiangyunliang comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck
AT zhaoyaofeng comprehensiveanalysisofthegermlineandexpressedtcrrepertoireinwhitepekingduck