Changes in the transcriptomic profiles of maize roots in response to iron-deficiency stress

被引:2
|
作者
Yan Li
Nian Wang
Fengtao Zhao
Xuejiao Song
Zhaohua Yin
Rong Huang
Chunqing Zhang
机构
[1] Shandong Agricultural University,State Key Laboratory of Crop Biology, Shandong Cooperative Innovation Center of Efficient Production with High Annual Yield of Wheat and Corn, Shandong Key Laboratory of Crop Biology, College of Agronomy
[2] Chinese Academy of Sciences,Key Laboratory of Plant Germplasm Enhancement and Speciality Agriculture, Wuhan Botanical Garden
[3] Shandong Cotton Research Center,undefined
来源
Plant Molecular Biology | 2014年 / 85卷
关键词
Transcriptome; Illumina sequencing; Iron deficiency; Interveinal chlorosis; Maize;
D O I
暂无
中图分类号
学科分类号
摘要
Plants are often subjected to iron (Fe)-deficiency stress because of its low solubility. Plants have evolved two distinct strategies to solubilize and transport Fe to acclimate to this abiotic stress condition. Transcriptomic profiling analysis was performed using Illumina digital gene expression to understand the mechanism underlying resistance responses of roots to Fe starvation in maize, an important Strategy II plant. A total of 3,427, 4,069, 4,881, and 2,610 genes had significantly changed expression levels after Fe-deficiency treatments of 1, 2, 4 or 7 days, respectively. Genes involved in 2′-deoxymugineic acid (DMA) synthesis, secretion, and Fe(III)–DMA uptake were significantly induced. Many genes related to plant hormones, protein kinases, and protein phosphatases responded to Fe-deficiency stress, suggesting their regulatory roles in response to the Fe-deficiency stress. Functional annotation clustering analysis, using the Database for Annotation, Visualization and Integrated Discovery, revealed maize root responses to Fe starvation. This resulted in 38 functional annotation clusters: 25 for up-regulated genes, and 13 for down-regulated ones. These included genes encoding enzymes involved in the metabolism of carboxylic acids, isoprenoids and aromatic compounds, transporters, and stress response proteins. Our work provides integrated information for understanding maize response to Fe-deficiency stress.
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页码:349 / 363
页数:14
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