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Cloning, functional characterization and heterologous expression of TaLsi1, a wheat silicon transporter gene

机译:小麦转运蛋白基因TaLsi1的克隆,功能鉴定及异源表达

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摘要

Silicon (Si) is known to be beneficial to plants, namely in alleviating biotic and abiotic stresses. The magnitude of such positive effects is associated with a plant’s natural ability to absorb Si. Many grasses can accumulate as much as 10% on a dry weight basis while most dicots, including Arabidopsis, will accumulate less than 0.1%. In this report, we describe the cloning and functional characterization of TaLsi1, a wheat Si transporter gene. In addition, we developed a heterologous system for the study of Si uptake in plants by introducing TaLsi1 and OsLsi1, its ortholog in rice, into Arabidopsis, a species with a very low innate Si uptake capacity. When expressed constitutively under the control of the CaMV 35S promoter, both TaLsi1 and OsLsi1 were expressed in cells of roots and shoots. Such constitutive expression of TaLsi1 or OsLsi1 resulted in a fourfold to fivefold increase in Si accumulation in transformed plants compared to WT. However, this Si absorption caused deleterious symptoms. When the wheat transporter was expressed under the control of a root-specific promoter (a boron transporter gene (AtNIP5;1) promoter), a similar increase in Si absorption was noted but the plants did not exhibit symptoms and grew normally. These results demonstrate that TaLsi1 is indeed a functional Si transporter as its expression in Arabidopsis leads to increased Si uptake, but that this expression must be confined to root cells for healthy plant development. The availability of this heterologous expression system will facilitate further studies into the mechanisms and benefits of Si uptake.
机译:已知硅(Si)对植物有益,即减轻生物和非生物胁迫。这种积极影响的程度与植物吸收硅的天然能力有关。以干重计,许多草可以累积多达10%,而包括拟南芥在内的大多数双子叶植物的累积量不到0.1%。在本报告中,我们描述了小麦Si转运蛋白TaLsi1的克隆和功能表征。此外,我们通过将TaLsi1和OsLsi1(其直系同源物在水稻中)引入拟南芥(一种具有非常低的先天Si吸收能力的物种)中,开发了用于研究植物对Si吸收的异源系统。当在CaMV 35S启动子的控制下组成性表达时,TaLsi1和OsLsi1均在根和芽的细胞中表达。与WT相比,TaLsi1或OsLsi1的这种组成型表达使转化植物中的Si积累增加了4到5倍。但是,这种Si吸收引起有害的症状。当小麦转运蛋白在根特异性启动子(硼转运蛋白基因(AtNIP5; 1)启动子)的控制下表达时,Si吸收也有类似的增加,但是植物没有任何症状并且正常生长。这些结果表明,TaLsi1确实是一种功能性的Si转运蛋白,因为它在拟南芥中的表达导致增加的Si吸收,但是为了健康的植物发育,该表达必须限于根细胞。这种异源表达系统的可用性将促进对硅吸收的机制和益处的进一步研究。

著录项

  • 来源
    《Plant Molecular Biology》 |2012年第2期|p.35-46|共12页
  • 作者单位

    Département de Phytologie, Faculté des Sciences de l’agriculture et de l’alimentation, Centre de Recherche en Horticulture, Université Laval, Pavillon Paul-Comtois, Quebec, QC, G1V 0A6, Canada;

    Département de Phytologie, Faculté des Sciences de l’agriculture et de l’alimentation, Centre de Recherche en Horticulture, Université Laval, Pavillon Paul-Comtois, Quebec, QC, G1V 0A6, Canada;

    Institute of Plant Science and Resources, Okayama University, Chuo 2-20-1, Kurashiki, 710-0046, Japan;

    Institute of Plant Science and Resources, Okayama University, Chuo 2-20-1, Kurashiki, 710-0046, Japan;

    Département de Phytologie, Faculté des Sciences de l’agriculture et de l’alimentation, Centre de Recherche en Horticulture, Université Laval, Pavillon Paul-Comtois, Quebec, QC, G1V 0A6, Canada;

    Département de Phytologie, Faculté des Sciences de l’agriculture et d;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lsi1 genes; Aquaporins; Silicon transport; Wheat; Transgenic Arabidopsis;

    机译:Lsi1基因;水通道蛋白;硅转运;小麦;转基因拟南芥;

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