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Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum)

As high-strength cotton fibers are critical components of high quality cotton, developing cotton cultivars with high-strength fibers as well as high yield is a top priority for cotton development. Recently, chromosome segment substitution lines (CSSLs) have been developed from high-yield Upland cott...

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Autores principales: Lu, Quanwei, Shi, Yuzhen, Xiao, Xianghui, Li, Pengtao, Gong, Juwu, Gong, Wankui, Liu, Aiying, Shang, Haihong, Li, Junwen, Ge, Qun, Song, Weiwu, Li, Shaoqi, Zhang, Zhen, Rashid, Md Harun or, Peng, Renhai, Yuan, Youlu, Huang, Jinling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5633395/
https://www.ncbi.nlm.nih.gov/pubmed/28874383
http://dx.doi.org/10.1534/g3.117.300108
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author Lu, Quanwei
Shi, Yuzhen
Xiao, Xianghui
Li, Pengtao
Gong, Juwu
Gong, Wankui
Liu, Aiying
Shang, Haihong
Li, Junwen
Ge, Qun
Song, Weiwu
Li, Shaoqi
Zhang, Zhen
Rashid, Md Harun or
Peng, Renhai
Yuan, Youlu
Huang, Jinling
author_facet Lu, Quanwei
Shi, Yuzhen
Xiao, Xianghui
Li, Pengtao
Gong, Juwu
Gong, Wankui
Liu, Aiying
Shang, Haihong
Li, Junwen
Ge, Qun
Song, Weiwu
Li, Shaoqi
Zhang, Zhen
Rashid, Md Harun or
Peng, Renhai
Yuan, Youlu
Huang, Jinling
author_sort Lu, Quanwei
collection PubMed
description As high-strength cotton fibers are critical components of high quality cotton, developing cotton cultivars with high-strength fibers as well as high yield is a top priority for cotton development. Recently, chromosome segment substitution lines (CSSLs) have been developed from high-yield Upland cotton (Gossypium hirsutum) crossed with high-quality Sea Island cotton (G. barbadense). Here, we constructed a CSSL population by crossing CCRI45, a high-yield Upland cotton cultivar, with Hai1, a Sea Island cotton cultivar with superior fiber quality. We then selected two CSSLs with significantly higher fiber strength than CCRI45 (MBI7747 and MBI7561), and one CSSL with lower fiber strength than CCRI45 (MBI7285), for further analysis. We sequenced all four transcriptomes at four different time points postanthesis, and clustered the 44,678 identified genes by function. We identified 2200 common differentially-expressed genes (DEGs): those that were found in both high quality CSSLs (MBI7747 and MBI7561), but not in the low quality CSSL (MBI7285). Many of these genes were associated with various metabolic pathways that affect fiber strength. Upregulated DEGs were associated with polysaccharide metabolic regulation, single-organism localization, cell wall organization, and biogenesis, while the downregulated DEGs were associated with microtubule regulation, the cellular response to stress, and the cell cycle. Further analyses indicated that three genes, XLOC_036333 [mannosyl-oligosaccharide-α-mannosidase (MNS1)], XLOC_029945 (FLA8), and XLOC_075372 (snakin-1), were potentially important for the regulation of cotton fiber strength. Our results suggest that these genes may be good candidates for future investigation of the molecular mechanisms of fiber strength formation and for the improvement of cotton fiber quality through molecular breeding.
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spelling pubmed-56333952017-10-18 Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum) Lu, Quanwei Shi, Yuzhen Xiao, Xianghui Li, Pengtao Gong, Juwu Gong, Wankui Liu, Aiying Shang, Haihong Li, Junwen Ge, Qun Song, Weiwu Li, Shaoqi Zhang, Zhen Rashid, Md Harun or Peng, Renhai Yuan, Youlu Huang, Jinling G3 (Bethesda) Genomic Selection As high-strength cotton fibers are critical components of high quality cotton, developing cotton cultivars with high-strength fibers as well as high yield is a top priority for cotton development. Recently, chromosome segment substitution lines (CSSLs) have been developed from high-yield Upland cotton (Gossypium hirsutum) crossed with high-quality Sea Island cotton (G. barbadense). Here, we constructed a CSSL population by crossing CCRI45, a high-yield Upland cotton cultivar, with Hai1, a Sea Island cotton cultivar with superior fiber quality. We then selected two CSSLs with significantly higher fiber strength than CCRI45 (MBI7747 and MBI7561), and one CSSL with lower fiber strength than CCRI45 (MBI7285), for further analysis. We sequenced all four transcriptomes at four different time points postanthesis, and clustered the 44,678 identified genes by function. We identified 2200 common differentially-expressed genes (DEGs): those that were found in both high quality CSSLs (MBI7747 and MBI7561), but not in the low quality CSSL (MBI7285). Many of these genes were associated with various metabolic pathways that affect fiber strength. Upregulated DEGs were associated with polysaccharide metabolic regulation, single-organism localization, cell wall organization, and biogenesis, while the downregulated DEGs were associated with microtubule regulation, the cellular response to stress, and the cell cycle. Further analyses indicated that three genes, XLOC_036333 [mannosyl-oligosaccharide-α-mannosidase (MNS1)], XLOC_029945 (FLA8), and XLOC_075372 (snakin-1), were potentially important for the regulation of cotton fiber strength. Our results suggest that these genes may be good candidates for future investigation of the molecular mechanisms of fiber strength formation and for the improvement of cotton fiber quality through molecular breeding. Genetics Society of America 2017-09-05 /pmc/articles/PMC5633395/ /pubmed/28874383 http://dx.doi.org/10.1534/g3.117.300108 Text en Copyright © 2017 Lu et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Genomic Selection
Lu, Quanwei
Shi, Yuzhen
Xiao, Xianghui
Li, Pengtao
Gong, Juwu
Gong, Wankui
Liu, Aiying
Shang, Haihong
Li, Junwen
Ge, Qun
Song, Weiwu
Li, Shaoqi
Zhang, Zhen
Rashid, Md Harun or
Peng, Renhai
Yuan, Youlu
Huang, Jinling
Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum)
title Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum)
title_full Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum)
title_fullStr Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum)
title_full_unstemmed Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum)
title_short Transcriptome Analysis Suggests That Chromosome Introgression Fragments from Sea Island Cotton (Gossypium barbadense) Increase Fiber Strength in Upland Cotton (Gossypium hirsutum)
title_sort transcriptome analysis suggests that chromosome introgression fragments from sea island cotton (gossypium barbadense) increase fiber strength in upland cotton (gossypium hirsutum)
topic Genomic Selection
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5633395/
https://www.ncbi.nlm.nih.gov/pubmed/28874383
http://dx.doi.org/10.1534/g3.117.300108
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