Genome-wide identification and expression analyses of nitrate transporter family genes in wild soybean (Glycine soja)

被引:0
作者
Hongguang You
Yuanming Liu
Thuy Nguyen Minh
Haoran Lu
Pengmin Zhang
Wenfeng Li
Jialei Xiao
Xiaodong Ding
Qiang Li
机构
[1] Northeast Agricultural University,Key Laboratory of Agricultural Biological Functional Genes
来源
Journal of Applied Genetics | 2020年 / 61卷
关键词
Nitrate transporter; Wild soybean; Expression pattern; Phylogenetic analyses; Genetics;
D O I
暂无
中图分类号
学科分类号
摘要
Nitrate transporters (NRTs) are important channel proteins facilitating cross-membrane movement of small molecules like NO3− which is a critical nutrient for all life. However, the classification and evolution of nitrate transporters in the legume plants are still elusive. In this study, we surveyed the wild soybean (G. soja) genomic databases and identified 120 GsNRT1 and 5 GsNRT2 encoding genes. Phylogenetic analyses show that GsNRT1 subfamily is consisted of eight clades (NPF1 to NPF8), while GsNRT2 subfamily has only one clade. Gene chromosomal location and evolutionary historic analyses indicate that GsNRT genes are unevenly distributed on 19 out of 20 G. soja chromosomes and segmental duplications may take a major part in the expansion of GsNRT family. Investigations of gene structure and protein motif compositions suggest that GsNRT family members are highly conserved in structures of both gene and protein levels. In addition, we analyzed the spatial expression patterns of representative GsNRT genes and their responses to exogenous nitrogen and carbon supplies and different abiotic stresses. The qRT-PCR data indicated that 16 selected GsNRT genes showed various expression levels in the roots, stems, leaves, and pods of young G. soja plants, and these genes were regulated by not only nitrogen and carbohydrate nutrients but also NaCl, NaHCO3, abscisic acid (ABA), and salicylic acid (SA). These results suggest that GsNRT genes may be involved in the regulation of plant growth, development, and adaptation to environmental stresses, and the study will shed light on functional dissection of plant nitrate transporter proteins in the future.
引用
收藏
页码:489 / 501
页数:12
相关论文
共 256 条
[41]  
Guo Q(1998)Uptake, allocation and signaling of nitrate (vol 17, pg 458, 2012) J Biol Chem 273 12017-undefined
[42]  
Turnbull MH(undefined)Genome-wide analysis of SnRK gene family in undefined undefined undefined-undefined
[43]  
Song J(undefined) and functional characterization of BdSnRK2.9 undefined undefined undefined-undefined
[44]  
Roche J(undefined)A reference-grade wild soybean genome undefined undefined undefined-undefined
[45]  
Novak O(undefined)Divergence of duplicate genes in exon-intron structure undefined undefined undefined-undefined
[46]  
Spath J(undefined)Phylogenetic analysis of upland cotton MATE gene family reveals a conserved subfamily involved in transport of proanthocyanidins undefined undefined undefined-undefined
[47]  
Jameson PE(undefined)PAML 4: phylogenetic analysis by maximum likelihood undefined undefined undefined-undefined
[48]  
Love J(undefined)Dual pathways for regulation of root branching by nitrate undefined undefined undefined-undefined
[49]  
He QH(undefined)The undefined undefined undefined-undefined
[50]  
Qiao DR(undefined) ethylene/jasmonic acid-NRT signaling module coordinates nitrate reallocation and the trade-off between growth and environmental adaptation undefined undefined undefined-undefined