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Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize

BACKGROUND: Nicotianamine (NA), a ubiquitous molecule in plants, is an important metal ion chelator and the main precursor for phytosiderophores biosynthesis. Considerable progress has been achieved in cloning and characterizing the functions of nicotianamine synthase (NAS) in plants including barle...

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Autores principales: Zhou, Xiaojin, Li, Suzhen, Zhao, Qianqian, Liu, Xiaoqing, Zhang, Shaojun, Sun, Cheng, Fan, Yunliu, Zhang, Chunyi, Chen, Rumei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3637603/
https://www.ncbi.nlm.nih.gov/pubmed/23575343
http://dx.doi.org/10.1186/1471-2164-14-238
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author Zhou, Xiaojin
Li, Suzhen
Zhao, Qianqian
Liu, Xiaoqing
Zhang, Shaojun
Sun, Cheng
Fan, Yunliu
Zhang, Chunyi
Chen, Rumei
author_facet Zhou, Xiaojin
Li, Suzhen
Zhao, Qianqian
Liu, Xiaoqing
Zhang, Shaojun
Sun, Cheng
Fan, Yunliu
Zhang, Chunyi
Chen, Rumei
author_sort Zhou, Xiaojin
collection PubMed
description BACKGROUND: Nicotianamine (NA), a ubiquitous molecule in plants, is an important metal ion chelator and the main precursor for phytosiderophores biosynthesis. Considerable progress has been achieved in cloning and characterizing the functions of nicotianamine synthase (NAS) in plants including barley, Arabidopsis and rice. Maize is not only an important cereal crop, but also a model plant for genetics and evolutionary study. The genome sequencing of maize was completed, and many gene families were identified. Although three NAS genes have been characterized in maize, there is still no systematic identification of maize NAS family by genomic mining. RESULTS: In this study, nine NAS genes in maize were identified and their expression patterns in different organs including developing seeds were determined. According to the evolutionary relationship and tissue specific expression profiles of ZmNAS genes, they can be subgrouped into two classes. Moreover, the expression patterns of ZmNAS genes in response to fluctuating metal status were analysed. The class I ZmNAS genes were induced under Fe deficiency and were suppressed under Fe excessive conditions, while the expression pattern of class II genes were opposite to class I. The complementary expression patterns of class I and class II ZmNAS genes confirmed the classification of this family. Furthermore, the histochemical localization of ZmNAS1;1/1;2 and ZmNAS3 were determined using in situ hybridization. It was revealed that ZmNAS1;1/1;2, representing the class I genes, mainly expressed in cortex and stele of roots with sufficient Fe, and its expression can expanded in epidermis, as well as shoot apices under Fe deficient conditions. On the contrary, ZmNAS3, one of the class II genes, was accumulated in axillary meristems, leaf primordia and mesophyll cells. These results suggest that the two classes of ZmNAS genes may be regulated on transcriptional level when responds to various demands for iron uptake, translocation and homeostasis. CONCLUSION: These results provide significant insights into the molecular bases of ZmNAS in balancing iron uptake, translocation and homeostasis in response to fluctuating environmental Fe status.
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spelling pubmed-36376032013-04-28 Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize Zhou, Xiaojin Li, Suzhen Zhao, Qianqian Liu, Xiaoqing Zhang, Shaojun Sun, Cheng Fan, Yunliu Zhang, Chunyi Chen, Rumei BMC Genomics Research Article BACKGROUND: Nicotianamine (NA), a ubiquitous molecule in plants, is an important metal ion chelator and the main precursor for phytosiderophores biosynthesis. Considerable progress has been achieved in cloning and characterizing the functions of nicotianamine synthase (NAS) in plants including barley, Arabidopsis and rice. Maize is not only an important cereal crop, but also a model plant for genetics and evolutionary study. The genome sequencing of maize was completed, and many gene families were identified. Although three NAS genes have been characterized in maize, there is still no systematic identification of maize NAS family by genomic mining. RESULTS: In this study, nine NAS genes in maize were identified and their expression patterns in different organs including developing seeds were determined. According to the evolutionary relationship and tissue specific expression profiles of ZmNAS genes, they can be subgrouped into two classes. Moreover, the expression patterns of ZmNAS genes in response to fluctuating metal status were analysed. The class I ZmNAS genes were induced under Fe deficiency and were suppressed under Fe excessive conditions, while the expression pattern of class II genes were opposite to class I. The complementary expression patterns of class I and class II ZmNAS genes confirmed the classification of this family. Furthermore, the histochemical localization of ZmNAS1;1/1;2 and ZmNAS3 were determined using in situ hybridization. It was revealed that ZmNAS1;1/1;2, representing the class I genes, mainly expressed in cortex and stele of roots with sufficient Fe, and its expression can expanded in epidermis, as well as shoot apices under Fe deficient conditions. On the contrary, ZmNAS3, one of the class II genes, was accumulated in axillary meristems, leaf primordia and mesophyll cells. These results suggest that the two classes of ZmNAS genes may be regulated on transcriptional level when responds to various demands for iron uptake, translocation and homeostasis. CONCLUSION: These results provide significant insights into the molecular bases of ZmNAS in balancing iron uptake, translocation and homeostasis in response to fluctuating environmental Fe status. BioMed Central 2013-04-10 /pmc/articles/PMC3637603/ /pubmed/23575343 http://dx.doi.org/10.1186/1471-2164-14-238 Text en Copyright © 2013 Zhou et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zhou, Xiaojin
Li, Suzhen
Zhao, Qianqian
Liu, Xiaoqing
Zhang, Shaojun
Sun, Cheng
Fan, Yunliu
Zhang, Chunyi
Chen, Rumei
Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize
title Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize
title_full Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize
title_fullStr Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize
title_full_unstemmed Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize
title_short Genome-wide identification, classification and expression profiling of nicotianamine synthase (NAS) gene family in maize
title_sort genome-wide identification, classification and expression profiling of nicotianamine synthase (nas) gene family in maize
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3637603/
https://www.ncbi.nlm.nih.gov/pubmed/23575343
http://dx.doi.org/10.1186/1471-2164-14-238
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