Cargando…

Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development

For efficient spinning and superior fabric production, long fiber length is a desired trait for cotton production. To unveil the molecular basis of the cotton fiber length regulation, a short fiber mutant, Ligon lintless-1 (Li(1)), is selected to compare with its corresponding wild type (WT). Li(1)...

Descripción completa

Detalles Bibliográficos
Autores principales: Liang, Wenhua, Fang, Lei, Xiang, Dan, Hu, Yan, Feng, Hao, Chang, Lijing, Zhang, Tianzhen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4658197/
https://www.ncbi.nlm.nih.gov/pubmed/26600249
http://dx.doi.org/10.1371/journal.pone.0143503
_version_ 1782402498016837632
author Liang, Wenhua
Fang, Lei
Xiang, Dan
Hu, Yan
Feng, Hao
Chang, Lijing
Zhang, Tianzhen
author_facet Liang, Wenhua
Fang, Lei
Xiang, Dan
Hu, Yan
Feng, Hao
Chang, Lijing
Zhang, Tianzhen
author_sort Liang, Wenhua
collection PubMed
description For efficient spinning and superior fabric production, long fiber length is a desired trait for cotton production. To unveil the molecular basis of the cotton fiber length regulation, a short fiber mutant, Ligon lintless-1 (Li(1)), is selected to compare with its corresponding wild type (WT). Li(1) is a monogenic dominant cotton mutant causing extremely short fibers (<6mm) on mature seeds with visible pleiotropic effects on vegetative growth and development. In this research, we compared the transcriptome of fiber bearing ovules at 1 DPA, 3 DPA, 8 DPA and leaf between Li(1) mutant and WT. A total of 7,852 differentially expressed genes (DEGs) were detected in ovules and leaves, which mainly participated in sugar, secondary metabolite and lipid metabolism pathways based on KEGG analysis. The common DEGs at 1 DPA and 3 DPA were involved in the responses to endogenous stimulus, signal transduction and long-chain fatty acid biosynthesis. For 3 DPA, 8 DPA and leaf, the common DEGs were involved in the responses to auxin and receptor kinases related pathway. Further analysis showed that 37 genes involved in very-long-chain fatty acid biosynthesis were suppressed in Li(1) mutant during fiber fast elongation development. Most of the DEGs involved in cell wall metabolism, such cellulose synthase, expansin family, and glycosyl hydrolase were differentially expressed at 3 DPA and 8 DPA. Our results provide new insights into the mechanisms of fiber elongation, and offer novel genes as potential objects for fiber length improvement.
format Online
Article
Text
id pubmed-4658197
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-46581972015-12-02 Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development Liang, Wenhua Fang, Lei Xiang, Dan Hu, Yan Feng, Hao Chang, Lijing Zhang, Tianzhen PLoS One Research Article For efficient spinning and superior fabric production, long fiber length is a desired trait for cotton production. To unveil the molecular basis of the cotton fiber length regulation, a short fiber mutant, Ligon lintless-1 (Li(1)), is selected to compare with its corresponding wild type (WT). Li(1) is a monogenic dominant cotton mutant causing extremely short fibers (<6mm) on mature seeds with visible pleiotropic effects on vegetative growth and development. In this research, we compared the transcriptome of fiber bearing ovules at 1 DPA, 3 DPA, 8 DPA and leaf between Li(1) mutant and WT. A total of 7,852 differentially expressed genes (DEGs) were detected in ovules and leaves, which mainly participated in sugar, secondary metabolite and lipid metabolism pathways based on KEGG analysis. The common DEGs at 1 DPA and 3 DPA were involved in the responses to endogenous stimulus, signal transduction and long-chain fatty acid biosynthesis. For 3 DPA, 8 DPA and leaf, the common DEGs were involved in the responses to auxin and receptor kinases related pathway. Further analysis showed that 37 genes involved in very-long-chain fatty acid biosynthesis were suppressed in Li(1) mutant during fiber fast elongation development. Most of the DEGs involved in cell wall metabolism, such cellulose synthase, expansin family, and glycosyl hydrolase were differentially expressed at 3 DPA and 8 DPA. Our results provide new insights into the mechanisms of fiber elongation, and offer novel genes as potential objects for fiber length improvement. Public Library of Science 2015-11-24 /pmc/articles/PMC4658197/ /pubmed/26600249 http://dx.doi.org/10.1371/journal.pone.0143503 Text en © 2015 Liang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Liang, Wenhua
Fang, Lei
Xiang, Dan
Hu, Yan
Feng, Hao
Chang, Lijing
Zhang, Tianzhen
Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development
title Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development
title_full Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development
title_fullStr Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development
title_full_unstemmed Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development
title_short Transcriptome Analysis of Short Fiber Mutant Ligon lintless-1 (Li(1)) Reveals Critical Genes and Key Pathways in Cotton Fiber Elongation and Leaf Development
title_sort transcriptome analysis of short fiber mutant ligon lintless-1 (li(1)) reveals critical genes and key pathways in cotton fiber elongation and leaf development
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4658197/
https://www.ncbi.nlm.nih.gov/pubmed/26600249
http://dx.doi.org/10.1371/journal.pone.0143503
work_keys_str_mv AT liangwenhua transcriptomeanalysisofshortfibermutantligonlintless1li1revealscriticalgenesandkeypathwaysincottonfiberelongationandleafdevelopment
AT fanglei transcriptomeanalysisofshortfibermutantligonlintless1li1revealscriticalgenesandkeypathwaysincottonfiberelongationandleafdevelopment
AT xiangdan transcriptomeanalysisofshortfibermutantligonlintless1li1revealscriticalgenesandkeypathwaysincottonfiberelongationandleafdevelopment
AT huyan transcriptomeanalysisofshortfibermutantligonlintless1li1revealscriticalgenesandkeypathwaysincottonfiberelongationandleafdevelopment
AT fenghao transcriptomeanalysisofshortfibermutantligonlintless1li1revealscriticalgenesandkeypathwaysincottonfiberelongationandleafdevelopment
AT changlijing transcriptomeanalysisofshortfibermutantligonlintless1li1revealscriticalgenesandkeypathwaysincottonfiberelongationandleafdevelopment
AT zhangtianzhen transcriptomeanalysisofshortfibermutantligonlintless1li1revealscriticalgenesandkeypathwaysincottonfiberelongationandleafdevelopment