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Highly Boron Deficiency-Tolerant Plants Generated by Enhanced Expression of NIP5;1 a Boric Acid Channel

机译:NIP5; 1硼酸通道的增强表达产生的高度耐硼缺乏植物

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摘要

Boron (B) is an essential element for plants, and B deficiency is a worldwide agricultural problem. In B-deficient areas, B is often supplied as fertilizer, but excess B can be toxic to both plants and animals. Generation of B deficiency-tolerant plants could reduce B fertilizer use. Improved fertility under B-limiting conditions in Arabidopsis thaliana by overexpression of BOR1, a B transporter, has been reported, but the root growth was not improved by the BOR1 overexpression. In this study, we report that enhanced expression of NIP5;1, a boric acid channel for efficient B uptake, resulted in improved root elongation under B-limiting conditions in A. thaliana. An NIP5;1 activation tag line, which has a T-DNA insertion with enhancer sequences near the NIP5;1 gene, showed improved root elongation under B limitation. We generated a construct which mimics the tag line: the cauliflower mosaic virus 35S RNA promoter was inserted at 1,357 bp upstream of the NIP5;1 transcription initiation site. Introduction of this construct into the nip5;1-1 mutant and the BOR1 overexpresser resulted in enhanced expression of NIP5;1 and improved root elongation under low B supply. Furthermore, one of the transgenic lines exhibited improved fertility and short-term B uptake. Our results demonstrate successful improvement of B deficiency tolerance and the potential of enhancing expression of a mineral nutrient channel gene to improve growth under nutrient-limiting conditions.
机译:硼(B)是植物必不可少的元素,硼的缺乏是世界范围内的农业问题。在缺硼地区,B通常以肥料的形式提供,但是过量的B对植物和动物都有毒。耐缺硼植物的产生可以减少硼肥的使用。据报道,拟南芥中通过限制B转运蛋白BOR1的过表达提高了B限制条件下的生育力,但BOR1的过表达并没有改善根的生长。在这项研究中,我们报告说,增强的NIP5; 1(一种有效摄取硼的酸通道)的表达增强了拟南芥在B限制条件下的根伸长。一个NIP5; 1激活标签系,其T-DNA插入,​​在NIP5; 1基因附近具有增强子序列,在B限制下显示出改善的根伸长。我们生成了一个模拟标签线的构建体:将花椰菜花叶病毒35S RNA启动子插入到NIP5; 1转录起始位点的上游1,357 bp。将此构建体引入nip5; 1-1突变体和BOR1过表达,可在低B供应下增强NIP5; 1的表达并改善根伸长。此外,一种转基因品系显示出提高的育性和短期B吸收。我们的结果证明了对B缺乏症耐受性的成功改善以及增强矿物质营养通道基因表达的潜力,从而可以在营养限制条件下改善生长。

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