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多胺转运蛋白的自然变异决定拟南芥对百草枯的耐受性。

Natural variation in a polyamine transporter determines paraquat tolerance in Arabidopsis.

机构信息

Gene Discovery Research Group, RIKEN Plant Science Center, Tsukuba, Ibaraki 305-0074, Japan.

出版信息

Proc Natl Acad Sci U S A. 2012 Apr 17;109(16):6343-7. doi: 10.1073/pnas.1121406109. Epub 2012 Apr 4.

Abstract

Polyamines (PAs) are ubiquitous, polycationic compounds that are essential for the growth and survival of all organisms. Although the PA-uptake system plays a key role in mammalian cancer and in plant survival, the underlying molecular mechanisms are not well understood. Here, we identified an Arabidopsis L-type amino acid transporter (LAT) family transporter, named RMV1 (resistant to methyl viologen 1), responsible for uptake of PA and its analog paraquat (PQ). The natural variation in PQ tolerance was determined in 22 Arabidopsis thaliana accessions based on the polymorphic variation of RMV1. An RMV1-GFP fusion protein localized to the plasma membrane in transformed cells. The Arabidopsis rmv1 mutant was highly resistant to PQ because of the reduction of PQ uptake activity. Uptake studies indicated that RMV1 mediates proton gradient-driven PQ transport. RMV1 overexpressing plants were hypersensitive to PA and PQ and showed elevated PA/PQ uptake activity, supporting the notion that PQ enters plant cells via a carrier system that inherently functions in PA transport. Furthermore, we demonstrated that polymorphic variation in RMV1 controls PA/PQ uptake activity. Our identification of a molecular entity for PA/PQ uptake and sensitivity provides an important clue for our understanding of the mechanism and biological significance of PA uptake.

摘要

多胺(PAs)是普遍存在的多阳离子化合物,对所有生物的生长和存活都是必不可少的。尽管 PA 摄取系统在哺乳动物癌症和植物存活中起着关键作用,但潜在的分子机制尚不清楚。在这里,我们鉴定了一种拟南芥 L 型氨基酸转运体(LAT)家族转运体,命名为 RMV1(对甲基紫精 1 有抗性),负责 PA 和其类似物百草枯(PQ)的摄取。根据 RMV1 的多态性变化,在 22 个拟南芥品系中确定了 PQ 耐受性的自然变异。RMV1-GFP 融合蛋白在转化细胞中定位于质膜。由于 PQ 摄取活性降低,拟南芥 rmv1 突变体对 PQ 高度耐受。摄取研究表明,RMV1 介导质子梯度驱动的 PQ 转运。RMV1 过表达植物对 PA 和 PQ 敏感,PA/PQ 摄取活性升高,表明 PQ 通过内在起作用的载体系统进入植物细胞进行 PA 运输。此外,我们证明了 RMV1 的多态性变异控制着 PA/PQ 的摄取活性。我们对 PA/PQ 摄取和敏感性的分子实体的鉴定为我们理解 PA 摄取的机制和生物学意义提供了重要线索。

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