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Transcription Factors Responding to Pb Stress in Maize

Pb can damage the physiological function of human organs by entering the human body via food-chain enrichment. Revealing the mechanisms of maize tolerance to Pb is critical for preventing this. In this study, a Pb-tolerant maize inbred line, 178, was used to analyse transcription factors (TFs) expre...

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Autores principales: Zhang, Yanling, Ge, Fei, Hou, Fengxia, Sun, Wenting, Zheng, Qi, Zhang, Xiaoxiang, Ma, Langlang, Fu, Jun, He, Xiujing, Peng, Huanwei, Pan, Guangtang, Shen, Yaou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5615364/
https://www.ncbi.nlm.nih.gov/pubmed/28927013
http://dx.doi.org/10.3390/genes8090231
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author Zhang, Yanling
Ge, Fei
Hou, Fengxia
Sun, Wenting
Zheng, Qi
Zhang, Xiaoxiang
Ma, Langlang
Fu, Jun
He, Xiujing
Peng, Huanwei
Pan, Guangtang
Shen, Yaou
author_facet Zhang, Yanling
Ge, Fei
Hou, Fengxia
Sun, Wenting
Zheng, Qi
Zhang, Xiaoxiang
Ma, Langlang
Fu, Jun
He, Xiujing
Peng, Huanwei
Pan, Guangtang
Shen, Yaou
author_sort Zhang, Yanling
collection PubMed
description Pb can damage the physiological function of human organs by entering the human body via food-chain enrichment. Revealing the mechanisms of maize tolerance to Pb is critical for preventing this. In this study, a Pb-tolerant maize inbred line, 178, was used to analyse transcription factors (TFs) expressed under Pb stress based on RNA sequencing data. A total of 464 genes expressed in control check (CK) or Pb treatment samples were annotated as TFs. Among them, 262 differentially expressed transcription factors (DETs) were identified that responded to Pb treatment. Furthermore, the DETs were classified into 4 classes according to their expression patterns, and 17, 12 and 2 DETs were significantly annotated to plant hormone signal transduction, basal transcription factors and base excision repair, respectively. Seventeen DETs were found to participate in the plant hormone signal transduction pathway, where basic leucine zippers (bZIPs) were the most significantly enriched TFs, with 12 members involved. We further obtained 5 Arabidopsis transfer DNA (T-DNA) mutants for 6 of the maize bZIPs, among which the mutants atbzip20 and atbzip47, representing ZmbZIP54 and ZmbZIP107, showed obviously inhibited growth of roots and above-ground parts, compared with wild type. Five highly Pb-tolerant and 5 highly Pb-sensitive in maize lines were subjected to DNA polymorphism and expression level analysis of ZmbZIP54 and ZmbZIP107. The results suggested that differences in bZIPs expression partially accounted for the differences in Pb-tolerance among the maize lines. Our results contribute to the understanding of the molecular regulation mechanisms of TFs in maize under Pb stress.
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spelling pubmed-56153642017-09-28 Transcription Factors Responding to Pb Stress in Maize Zhang, Yanling Ge, Fei Hou, Fengxia Sun, Wenting Zheng, Qi Zhang, Xiaoxiang Ma, Langlang Fu, Jun He, Xiujing Peng, Huanwei Pan, Guangtang Shen, Yaou Genes (Basel) Article Pb can damage the physiological function of human organs by entering the human body via food-chain enrichment. Revealing the mechanisms of maize tolerance to Pb is critical for preventing this. In this study, a Pb-tolerant maize inbred line, 178, was used to analyse transcription factors (TFs) expressed under Pb stress based on RNA sequencing data. A total of 464 genes expressed in control check (CK) or Pb treatment samples were annotated as TFs. Among them, 262 differentially expressed transcription factors (DETs) were identified that responded to Pb treatment. Furthermore, the DETs were classified into 4 classes according to their expression patterns, and 17, 12 and 2 DETs were significantly annotated to plant hormone signal transduction, basal transcription factors and base excision repair, respectively. Seventeen DETs were found to participate in the plant hormone signal transduction pathway, where basic leucine zippers (bZIPs) were the most significantly enriched TFs, with 12 members involved. We further obtained 5 Arabidopsis transfer DNA (T-DNA) mutants for 6 of the maize bZIPs, among which the mutants atbzip20 and atbzip47, representing ZmbZIP54 and ZmbZIP107, showed obviously inhibited growth of roots and above-ground parts, compared with wild type. Five highly Pb-tolerant and 5 highly Pb-sensitive in maize lines were subjected to DNA polymorphism and expression level analysis of ZmbZIP54 and ZmbZIP107. The results suggested that differences in bZIPs expression partially accounted for the differences in Pb-tolerance among the maize lines. Our results contribute to the understanding of the molecular regulation mechanisms of TFs in maize under Pb stress. MDPI 2017-09-18 /pmc/articles/PMC5615364/ /pubmed/28927013 http://dx.doi.org/10.3390/genes8090231 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Yanling
Ge, Fei
Hou, Fengxia
Sun, Wenting
Zheng, Qi
Zhang, Xiaoxiang
Ma, Langlang
Fu, Jun
He, Xiujing
Peng, Huanwei
Pan, Guangtang
Shen, Yaou
Transcription Factors Responding to Pb Stress in Maize
title Transcription Factors Responding to Pb Stress in Maize
title_full Transcription Factors Responding to Pb Stress in Maize
title_fullStr Transcription Factors Responding to Pb Stress in Maize
title_full_unstemmed Transcription Factors Responding to Pb Stress in Maize
title_short Transcription Factors Responding to Pb Stress in Maize
title_sort transcription factors responding to pb stress in maize
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5615364/
https://www.ncbi.nlm.nih.gov/pubmed/28927013
http://dx.doi.org/10.3390/genes8090231
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