Suppr超能文献

油菜(Brassica napus L.)高亲和力硝酸盐转运体 2(NRT2)家族基因的全基因组鉴定与分析及其对各种胁迫的响应。

Genome-wide identification and analysis of high-affinity nitrate transporter 2 (NRT2) family genes in rapeseed (Brassica napus L.) and their responses to various stresses.

机构信息

Oil Crops Research Institute of Chinese Academy of Agricultural Sciences/Key Laboratory of Biology and Genetics Improvement of Oil Crops of the Ministry of Agriculture and Rural Affairs, Wuhan, 430062, P. R. China.

Tropotech LLC, St. Louis, MO, 63141, USA.

出版信息

BMC Plant Biol. 2020 Oct 9;20(1):464. doi: 10.1186/s12870-020-02648-1.

Abstract

BACKGROUND

High-affinity nitrate transporter 2 (NRT2) genes have been implicated in nitrate absorption and remobilization under nitrogen (N) starvation stress in many plant species, yet little is known about this gene family respond to various stresses often occurs in the production of rapeseed (Brassica napus L.).

RESULTS

This report details identification of 17 NRT2 gene family members in rapeseed, as well as, assessment of their expression profiles using RNA-seq analysis and qRT-PCR assays. In this study, all BnNRT2.1 members, BnNRT2.2a and BnNRT2.4a were specifically expressed in root tissues, while BnNRT2.7a and BnNRT2.7b were mainly expressed in aerial parts, including as the predominantly expressed NRT2 genes detected in seeds. This pattern of shoot NRT expression, along with homology to an Arabidopsis NRT expressed in seeds, strongly suggests that both BnNRT2.7 genes play roles in seed nitrate accumulation. Another rapeseed NRT, BnNRT2.5 s, exhibited intermediate expression, with transcripts detected in both shoot and root tissues. Functionality of BnNRT2s genes was further outlined by testing for adaptive responses in expression to exposure to a series of environmental stresses, including N, phosphorus (P) or potassium (K) deficiency, waterlogging and drought. In these tests, most NRT2 gene members were up-regulated by N starvation and restricted by the other stresses tested herein. In contrast to this overall trend, transcription of BnNRT2.1a was up-regulated under waterlogging and K deficiency stress, and BnNRT2.5 s was up-regulated in roots subjected to waterlogging. Furthermore, the mRNA levels of BnNRT2.7 s were enhanced under both waterlogging stress and P or K deficiency conditions. These results suggest that these three BnNRT2 genes might participate in crosstalk among different stress response pathways.

CONCLUSIONS

The results presented here outline a diverse set of NRT2 genes present in the rapeseed genome that collectively carry out specific functions throughout rapeseed development, while also responding not just to N deficiency, but also to several other stresses. Targeting of individual BnNRT2 members that coordinate rapeseed nitrate uptake and transport in response to cues from multiple stress response pathways could significantly expand the genetic resources available for improving rapeseed resistance to environmental stresses.

摘要

背景

高亲和硝酸盐转运体 2(NRT2)基因已被认为在许多植物物种的氮(N)饥饿胁迫下参与硝酸盐的吸收和再利用,但对于这个基因家族如何应对油菜(Brassica napus L.)生产中经常发生的各种胁迫知之甚少。

结果

本报告详细介绍了油菜中 17 个 NRT2 基因家族成员的鉴定,并通过 RNA-seq 分析和 qRT-PCR 检测评估了它们的表达谱。在这项研究中,所有 BnNRT2.1 成员、BnNRT2.2a 和 BnNRT2.4a 都特异性地在根组织中表达,而 BnNRT2.7a 和 BnNRT2.7b 主要在地上部分表达,包括在种子中检测到的主要表达的 NRT2 基因。这种茎部 NRT 表达模式,以及与拟南芥种子中表达的 NRT 的同源性,强烈表明这两个 BnNRT2.7 基因在种子硝酸盐积累中发挥作用。油菜的另一个 NRT,BnNRT2.5s,表现出中等表达,在茎和根组织中都检测到转录本。通过测试 BnNRT2s 基因对一系列环境胁迫(包括 N、磷(P)或钾(K)缺乏、水淹和干旱)暴露的适应性反应,进一步概述了 BnNRT2s 基因的功能。在这些测试中,大多数 NRT2 基因成员被 N 饥饿上调,而被本文中测试的其他应激所限制。与这种总体趋势相反,BnNRT2.1a 的转录在水淹和 K 缺乏胁迫下上调,BnNRT2.5s 在水淹根中上调。此外,BnNRT2.7s 的 mRNA 水平在水淹胁迫和 P 或 K 缺乏条件下均增强。这些结果表明,这三个 BnNRT2 基因可能参与不同应激反应途径之间的串扰。

结论

本研究结果概述了油菜基因组中存在的一组多样化的 NRT2 基因,这些基因在油菜发育过程中共同执行特定功能,不仅响应 N 缺乏,还响应其他几种胁迫。针对个别 BnNRT2 成员进行靶向操作,协调油菜对硝酸盐的摄取和运输,以响应来自多个胁迫反应途径的信号,这可能会显著扩大可用于提高油菜对环境胁迫抗性的遗传资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f28/7547492/1026355157c3/12870_2020_2648_Fig1_HTML.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验