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全基因组系统鉴定小麦 NRT2 基因家族及其在植物生长和硝酸盐缺乏响应中的表达谱。

Genome-wide systematic characterization of the NRT2 gene family and its expression profile in wheat (Triticum aestivum L.) during plant growth and in response to nitrate deficiency.

机构信息

Crop Research Institute, Sichuan Academy of Agricultural Sciences, Chengdu, 610066, Sichuan, China.

Environment-Friendly Crop Germplasm Innovation and Genetic Improvement Key Laboratory of Sichuan Province, Chengdu, 610066, Sichuan, China.

出版信息

BMC Plant Biol. 2023 Jul 7;23(1):353. doi: 10.1186/s12870-023-04333-5.

Abstract

BACKGROUND

Wheat (Triticum aestivum L.) is a major cereal crop that is grown worldwide, and it is highly dependent on sufficient N supply. The molecular mechanisms associated with nitrate uptake and assimilation are still poorly understood in wheat. In plants, NRT2 family proteins play a crucial role in NO acquisition and translocation under nitrate limited conditions. However, the biological functions of these genes in wheat are still unclear, especially their roles in NO uptake and assimilation.

RESULTS

In this study, a comprehensive analysis of wheat TaNRT2 genes was conducted using bioinformatics and molecular biology methods, and 49 TaNRT2 genes were identified. A phylogenetic analysis clustered the TaNRT2 genes into three clades. The genes that clustered on the same phylogenetic branch had similar gene structures and nitrate assimilation functions. The identified genes were further mapped onto the 13 wheat chromosomes, and the results showed that a large duplication event had occurred on chromosome 6. To explore the TaNRT2 gene expression profiles in wheat, we performed transcriptome sequencing after low nitrate treatment for three days. Transcriptome analysis revealed the expression levels of all TaNRT2 genes in shoots and roots, and based on the expression profiles, three highly expressed genes (TaNRT2-6A.2, TaNRT2-6A.6, and TaNRT2-6B.4) were selected for qPCR analysis in two different wheat cultivars ('Mianmai367' and 'Nanmai660') under nitrate-limited and normal conditions. All three genes were upregulated under nitrate-limited conditions and highly expressed in the high nitrogen use efficiency (NUE) wheat 'Mianmai367' under low nitrate conditions.

CONCLUSION

We systematically identified 49 NRT2 genes in wheat and analysed the transcript levels of all TaNRT2s under nitrate deficient conditions and over the whole growth period. The results suggest that these genes play important roles in nitrate absorption, distribution, and accumulation. This study provides valuable information and key candidate genes for further studies on the function of TaNRT2s in wheat.

摘要

背景

小麦(Triticum aestivum L.)是一种在全球范围内广泛种植的主要谷类作物,它对充足的氮供应高度依赖。然而,小麦中硝酸盐摄取和同化相关的分子机制仍知之甚少。在植物中,NRT2 家族蛋白在硝酸盐有限条件下的 NO 获取和转运中起着至关重要的作用。然而,这些基因在小麦中的生物学功能尚不清楚,特别是它们在 NO 摄取和同化中的作用。

结果

本研究利用生物信息学和分子生物学方法对小麦 TaNRT2 基因进行了全面分析,共鉴定到 49 个 TaNRT2 基因。系统发育分析将 TaNRT2 基因聚类为三个分支。聚类在同一系统发育分支上的基因具有相似的基因结构和硝酸盐同化功能。鉴定出的基因进一步映射到 13 条小麦染色体上,结果表明 6 号染色体上发生了大规模的复制事件。为了探讨小麦 TaNRT2 基因的表达谱,我们在低硝酸盐处理 3 天后进行了转录组测序。转录组分析揭示了所有 TaNRT2 基因在根和地上部的表达水平,并根据表达谱,选择三个高表达基因(TaNRT2-6A.2、TaNRT2-6A.6 和 TaNRT2-6B.4)在两个不同小麦品种(‘Mianmai367’和‘Nanmai660’)中进行硝酸盐限制和正常条件下的 qPCR 分析。在硝酸盐限制条件下,所有三个基因均上调表达,且在低硝酸盐条件下高氮利用效率(NUE)小麦‘Mianmai367’中高度表达。

结论

我们系统地鉴定了小麦中的 49 个 NRT2 基因,并分析了所有 TaNRT2 在硝酸盐缺乏和整个生长期间的转录水平。结果表明,这些基因在硝酸盐吸收、分布和积累中起着重要作用。本研究为进一步研究 TaNRT2 在小麦中的功能提供了有价值的信息和关键候选基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3848/10327373/0f07274888e2/12870_2023_4333_Fig1_HTML.jpg

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