Morris Jay, Tian Hui, Park Sunghun, Sreevidya Coimbatore S, Ward John M, Hirschi Kendal D
Vegetable and Fruit Improvement Center, Texas A&M University, College Station, Texas 77845, USA.
Plant Physiol. 2008 Nov;148(3):1474-86. doi: 10.1104/pp.108.118810. Epub 2008 Sep 5.
The Arabidopsis (Arabidopsis thaliana) cation calcium exchangers (CCXs) were recently identified as a subfamily of cation transporters; however, no plant CCXs have been functionally characterized. Here, we show that Arabidopsis AtCCX3 (At3g14070) and AtCCX4 (At1g54115) can suppress yeast mutants defective in Na(+), K(+), and Mn(2+) transport. We also report high-capacity uptake of (86)Rb(+) in tonoplast-enriched vesicles from yeast expressing AtCCX3. Cation competition studies showed inhibition of (86)Rb(+) uptake in AtCCX3 cells by excess Na(+), K(+), and Mn(2+). Functional epitope-tagged AtCCX3 fusion proteins were localized to endomembranes in plants and yeast. In Arabidopsis, AtCCX3 is primarily expressed in flowers, while AtCCX4 is expressed throughout the plant. Quantitative polymerase chain reaction showed that expression of AtCCX3 increased in plants treated with NaCl, KCl, and MnCl(2). Insertional mutant lines of AtCCX3 and AtCCX4 displayed no apparent growth defects; however, overexpression of AtCCX3 caused increased Na(+) accumulation and increased (86)Rb(+) transport. Uptake of (86)Rb(+) increased in tonoplast-enriched membranes isolated from Arabidopsis lines expressing CCX3 driven by the cauliflower mosaic virus 35S promoter. Overexpression of AtCCX3 in tobacco (Nicotiana tabacum) produced lesions in the leaves, stunted growth, and resulted in the accumulation of higher levels of numerous cations. In summary, these findings suggest that AtCCX3 is an endomembrane-localized H(+)-dependent K(+) transporter with apparent Na(+) and Mn(2+) transport properties distinct from those of previously characterized plant transporters.
拟南芥(Arabidopsis thaliana)阳离子钙交换体(CCXs)最近被鉴定为阳离子转运蛋白的一个亚家族;然而,尚未对任何植物CCXs进行功能表征。在此,我们表明拟南芥AtCCX3(At3g14070)和AtCCX4(At1g54115)能够抑制在Na⁺、K⁺和Mn²⁺转运方面存在缺陷的酵母突变体。我们还报告了在表达AtCCX3的酵母富含液泡膜的囊泡中对⁸⁶Rb⁺的高容量摄取。阳离子竞争研究表明,过量的Na⁺、K⁺和Mn²⁺会抑制AtCCX3细胞对⁸⁶Rb⁺的摄取。带有功能性表位标签的AtCCX3融合蛋白定位于植物和酵母的内膜。在拟南芥中,AtCCX3主要在花中表达,而AtCCX4在整个植株中表达。定量聚合酶链反应表明,在用NaCl、KCl和MnCl₂处理的植物中AtCCX3的表达增加。AtCCX3和AtCCX4的插入突变株系未表现出明显的生长缺陷;然而,AtCCX3的过表达导致Na⁺积累增加和⁸⁶Rb⁺转运增加。从由花椰菜花叶病毒35S启动子驱动表达CCX3的拟南芥株系中分离得到的富含液泡膜中,⁸⁶Rb⁺的摄取增加。AtCCX3在烟草(Nicotiana tabacum)中的过表达导致叶片出现损伤、生长受阻,并导致多种阳离子的积累水平升高。总之,这些发现表明AtCCX3是一种定位于内膜的H⁺依赖性K⁺转运蛋白,其明显的Na⁺和Mn²⁺转运特性不同于先前表征的植物转运蛋白。