Lotus japonicus NLP1 and NLP4 transcription factors have different roles in the regulation of nitrate transporter family gene expression.

IF 1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Hanna Nishida, Takuya Suzaki
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引用次数: 1

Abstract

Root nodule symbiosis is promoted in nitrogen-deficient environments, whereas host plants cease the symbiosis if they can obtain enough nitrogen from their surrounding soil. In Lotus japonicus, recent reports indicate that two NODULE INCEPTION (NIN)-LIKE PROTEIN (NLP) transcription factors, LjNLP1 and LjNLP4, play important roles in the regulation of gene expression and nodulation in response to nitrate. To characterize the redundant and unique roles of LjNLP1 and LjNLP4 in more detail, we reanalyzed our previous transcriptome data using Ljnlp1 and Ljnlp4 mutants. Although downstream genes of LjNLP1 and LjNLP4 mostly overlapped, we found that nitrate-induced expression of NITRATE TRANSPORTER 2 (LjNRT2) family genes was specifically regulated by LjNLP1. In contrast, LjNRT1 gene family expression was regulated by both LjNLP1 and LjNLP4. Therefore, it is likely that the two NLPs play distinct roles in the regulation of nitrate transport.

日本莲NLP1和NLP4转录因子在硝酸盐转运蛋白家族基因表达调控中具有不同的作用。
根瘤共生在缺氮环境中得到促进,而寄主植物如果能从周围土壤中获得足够的氮就会停止共生。在日本莲花中,最近的报道表明两个NLP转录因子LjNLP1和LjNLP4在硝酸盐胁迫下的基因表达和结瘤调控中起重要作用。为了更详细地描述LjNLP1和LjNLP4的冗余和独特作用,我们使用LjNLP1和LjNLP4突变体重新分析了之前的转录组数据。虽然LjNLP1和LjNLP4的下游基因大部分重叠,但我们发现硝酸盐诱导的硝酸盐转运蛋白2 (LjNRT2)家族基因的表达受到LjNLP1的特异性调控。相比之下,LjNRT1基因家族的表达同时受到LjNLP1和LjNLP4的调控。因此,这两种nlp可能在调控硝酸盐运输中发挥不同的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Genes & genetic systems
Genes & genetic systems 生物-生化与分子生物学
CiteScore
1.50
自引率
0.00%
发文量
22
审稿时长
>12 weeks
期刊介绍: Genes & Genetic Systems , formerly the Japanese Journal of Genetics , is published bimonthly by the Genetics Society of Japan.
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