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小麦锌诱导的易位子样转运蛋白转录表达响应的重叠强调了其在铁和锌胁迫下的重要作用。

Overlapping transcriptional expression response of wheat zinc-induced facilitator-like transporters emphasize important role during Fe and Zn stress.

机构信息

National Agri-Food Biotechnology Institute (Department of Biotechnology), Sector 81, Knowledge City, Mohali, Punjab, 140306, India.

University Institute of Engineering and Technology, Panjab University, Sector 25, Chandigarh, Punjab, 160015, India.

出版信息

BMC Mol Biol. 2019 Sep 23;20(1):22. doi: 10.1186/s12867-019-0139-6.

Abstract

BACKGROUND

Hexaploid wheat is an important cereal crop that has been targeted to enhance grain micronutrient content including zinc (Zn) and iron (Fe). In this direction, modulating the expression of plant transporters involved in Fe and Zn homeostasis has proven to be one of the promising approaches. The present work was undertaken to identify wheat zinc-induced facilitator-like (ZIFL) family of transporters. The wheat ZIFL genes were characterized for their transcriptional expression response during micronutrient fluctuations and exposure to multiple heavy metals.

RESULTS

The genome-wide analyses resulted in identification of fifteen putative TaZIFL-like genes, which were distributed only on Chromosome 3, 4 and 5. Wheat ZIFL proteins subjected to the phylogenetic analysis showed the uniform distribution along with rice, Arabidopsis and maize. In-silico analysis of the promoters of the wheat ZIFL genes demonstrated the presence of multiple metal binding sites including those which are involved in Fe and heavy metal homeostasis. Quantitative real-time PCR analysis of wheat ZIFL genes suggested the differential regulation of the transcripts in both roots and shoots under Zn surplus and also during Fe deficiency. Specifically, in roots, TaZIFL2.3, TaZIFL4.1, TaZIFL4.2, TaZIFL5, TaZIFL6.1 and TaZIFL6.2 were significantly up-regulated by both Zn and Fe. This suggested that ZIFL could possibly be regulated by both the nutrient stress in a tissue specific manner. When exposed to heavy metals, TaZIFL4.2 and TaZIFL7.1 show significant up-regulation, whereas TaZIFL5 and TaZIFL6.2 remained almost unaffected.

CONCLUSION

This is the first report for detailed analysis of wheat ZIFL genes. ZIFL genes also encode for transporter of mugineic acid (TOM) proteins, that are involved in the release of phytosiderophores to enhance Fe/Zn uptake. The detailed expression analysis suggests the varying expression patterns during development of wheat seedlings and also against abiotic/biotic stresses. Overall, this study will lay foundation to prioritize functional assessment of the candidate ZIFL as a putative TOM protein in wheat.

摘要

背景

六倍体小麦是一种重要的谷类作物,其目标是提高谷物中的微量营养素含量,包括锌(Zn)和铁(Fe)。在这方面,调节参与 Fe 和 Zn 体内平衡的植物转运蛋白的表达已被证明是一种很有前途的方法。本工作旨在鉴定小麦锌诱导的易位子样(ZIFL)家族转运蛋白。对小麦 ZIFL 基因在微量元素波动和多种重金属暴露期间的转录表达反应进行了特征描述。

结果

全基因组分析导致鉴定出十五个推定的 TaZIFL 样基因,这些基因仅分布在染色体 3、4 和 5 上。对小麦 ZIFL 蛋白进行系统发育分析表明,它们与水稻、拟南芥和玉米一起均匀分布。对小麦 ZIFL 基因启动子的计算机分析表明,存在多个金属结合位点,包括参与 Fe 和重金属体内平衡的位点。对小麦 ZIFL 基因的定量实时 PCR 分析表明,在 Zn 过剩和 Fe 缺乏下,根和茎中的转录物存在差异调节。具体而言,在根中,TaZIFL2.3、TaZIFL4.1、TaZIFL4.2、TaZIFL5、TaZIFL6.1 和 TaZIFL6.2 均被 Zn 和 Fe 显著上调。这表明 ZIFL 可能以组织特异性的方式受到营养胁迫的调节。当暴露于重金属时,TaZIFL4.2 和 TaZIFL7.1 显示出显著的上调,而 TaZIFL5 和 TaZIFL6.2 几乎不受影响。

结论

这是对小麦 ZIFL 基因进行详细分析的首次报道。ZIFL 基因还编码参与释放麦根酸(TOM)蛋白的转运蛋白,该蛋白可增强铁/锌的吸收。详细的表达分析表明,在小麦幼苗的发育过程中以及在非生物/生物胁迫下,表达模式存在差异。总体而言,这项研究将为优先对候选 ZIFL 作为小麦中的推定 TOM 蛋白进行功能评估奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/764a/6757437/b45c15949cc5/12867_2019_139_Fig1_HTML.jpg

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