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Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium

Potassium (K) deficiency is one of the major factors affecting crop growth and productivity. Development of low-K tolerant crops is an effective approach to solve the nutritional deficiency in agricultural production. Tibetan annual wild barley is rich in genetic diversity and can grow normally unde...

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Autores principales: Zeng, Jianbin, He, Xiaoyan, Wu, Dezhi, Zhu, Bo, Cai, Shengguan, Nadira, Umme Aktari, Jabeen, Zahra, Zhang, Guoping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4065039/
https://www.ncbi.nlm.nih.gov/pubmed/24949953
http://dx.doi.org/10.1371/journal.pone.0100567
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author Zeng, Jianbin
He, Xiaoyan
Wu, Dezhi
Zhu, Bo
Cai, Shengguan
Nadira, Umme Aktari
Jabeen, Zahra
Zhang, Guoping
author_facet Zeng, Jianbin
He, Xiaoyan
Wu, Dezhi
Zhu, Bo
Cai, Shengguan
Nadira, Umme Aktari
Jabeen, Zahra
Zhang, Guoping
author_sort Zeng, Jianbin
collection PubMed
description Potassium (K) deficiency is one of the major factors affecting crop growth and productivity. Development of low-K tolerant crops is an effective approach to solve the nutritional deficiency in agricultural production. Tibetan annual wild barley is rich in genetic diversity and can grow normally under poor soils, including low-K supply. However, the molecular mechanism about low K tolerance is still poorly understood. In this study, Illumina RNA-Sequencing was performed using two Tibetan wild barley genotypes differing in low K tolerance (XZ153, tolerant and XZ141, sensitive), to determine the genotypic difference in transcriptome profiling. We identified a total of 692 differentially expressed genes (DEGs) in two genotypes at 6 h and 48 h after low-K treatment, including transcription factors, transporters and kinases, oxidative stress and hormone signaling related genes. Meanwhile, 294 low-K tolerant associated DEGs were assigned to transporter and antioxidant activities, stimulus response, and other gene ontology (GO), which were mainly involved in starch and sucrose metabolism, lipid metabolism and ethylene biosynthesis. Finally, a hypothetical model of low-K tolerance mechanism in XZ153 was presented. It may be concluded that wild barley accession XZ153 has a higher capability of K absorption and use efficiency than XZ141 under low K stress. A rapid response to low K stress in XZ153 is attributed to its more K uptake and accumulation in plants, resulting in higher low K tolerance. The ethylene response pathway may account for the genotypic difference in low-K tolerance.
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spelling pubmed-40650392014-06-25 Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium Zeng, Jianbin He, Xiaoyan Wu, Dezhi Zhu, Bo Cai, Shengguan Nadira, Umme Aktari Jabeen, Zahra Zhang, Guoping PLoS One Research Article Potassium (K) deficiency is one of the major factors affecting crop growth and productivity. Development of low-K tolerant crops is an effective approach to solve the nutritional deficiency in agricultural production. Tibetan annual wild barley is rich in genetic diversity and can grow normally under poor soils, including low-K supply. However, the molecular mechanism about low K tolerance is still poorly understood. In this study, Illumina RNA-Sequencing was performed using two Tibetan wild barley genotypes differing in low K tolerance (XZ153, tolerant and XZ141, sensitive), to determine the genotypic difference in transcriptome profiling. We identified a total of 692 differentially expressed genes (DEGs) in two genotypes at 6 h and 48 h after low-K treatment, including transcription factors, transporters and kinases, oxidative stress and hormone signaling related genes. Meanwhile, 294 low-K tolerant associated DEGs were assigned to transporter and antioxidant activities, stimulus response, and other gene ontology (GO), which were mainly involved in starch and sucrose metabolism, lipid metabolism and ethylene biosynthesis. Finally, a hypothetical model of low-K tolerance mechanism in XZ153 was presented. It may be concluded that wild barley accession XZ153 has a higher capability of K absorption and use efficiency than XZ141 under low K stress. A rapid response to low K stress in XZ153 is attributed to its more K uptake and accumulation in plants, resulting in higher low K tolerance. The ethylene response pathway may account for the genotypic difference in low-K tolerance. Public Library of Science 2014-06-20 /pmc/articles/PMC4065039/ /pubmed/24949953 http://dx.doi.org/10.1371/journal.pone.0100567 Text en © 2014 Zeng 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
Zeng, Jianbin
He, Xiaoyan
Wu, Dezhi
Zhu, Bo
Cai, Shengguan
Nadira, Umme Aktari
Jabeen, Zahra
Zhang, Guoping
Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium
title Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium
title_full Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium
title_fullStr Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium
title_full_unstemmed Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium
title_short Comparative Transcriptome Profiling of Two Tibetan Wild Barley Genotypes in Responses to Low Potassium
title_sort comparative transcriptome profiling of two tibetan wild barley genotypes in responses to low potassium
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4065039/
https://www.ncbi.nlm.nih.gov/pubmed/24949953
http://dx.doi.org/10.1371/journal.pone.0100567
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