Institute of Plant Biology, University of Zurich, Zollikerstrasse 107, Zurich, Switzerland.
Planta. 2013 Aug;238(2):283-91. doi: 10.1007/s00425-013-1888-y. Epub 2013 May 5.
Vitis vinifera L. represents an economically important fruit species. Grape and wine flavour is made from a complex set of compounds. The acidity of berries is a major parameter in determining grape berry quality for wine making and fruit consumption. Despite the importance of malic and tartaric acid (TA) storage and transport for grape berry acidity, no vacuolar transporter for malate or tartrate has been identified so far. Some members of the aluminium-activated malate transporter (ALMT) anion channel family from Arabidopsis thaliana have been shown to be involved in mediating malate fluxes across the tonoplast. Therefore, we hypothesised that a homologue of these channels could have a similar role in V. vinifera grape berries. We identified homologues of the Arabidopsis vacuolar anion channel AtALMT9 through a TBLASTX search on the V. vinifera genome database. We cloned the closest homologue of AtALMT9 from grape berry cDNA and designated it VvALMT9. The expression profile revealed that VvALMT9 is constitutively expressed in berry mesocarp tissue and that its transcription level increases during fruit maturation. Moreover, we found that VvALMT9 is targeted to the vacuolar membrane. Using patch-clamp analysis, we could show that, besides malate, VvALMT9 mediates tartrate currents which are higher than in its Arabidopsis homologue. In summary, in the present study we provide evidence that VvALMT9 is a vacuolar malate channel expressed in grape berries. Interestingly, in V. vinifera, a tartrate-producing plant, the permeability of the channel is apparently adjusted to TA.
葡萄(Vitis vinifera L.)是一种具有重要经济价值的水果。葡萄和葡萄酒的风味是由一系列复杂的化合物组成的。浆果的酸度是决定酿酒和水果食用葡萄浆果质量的一个主要参数。尽管苹果酸和酒石酸(TA)的储存和运输对葡萄浆果的酸度很重要,但到目前为止,还没有鉴定出苹果酸或酒石酸盐的液泡转运蛋白。拟南芥(Arabidopsis thaliana)铝激活苹果酸转运体(ALMT)阴离子通道家族的一些成员已被证明参与调节液泡膜上的苹果酸通量。因此,我们假设这些通道的同源物可能在葡萄浆果中具有类似的作用。我们通过对葡萄基因组数据库进行 TBLASTX 搜索,鉴定出拟南芥液泡阴离子通道 AtALMT9 的同源物。我们从葡萄浆果 cDNA 中克隆了 AtALMT9 的最接近同源物,并将其命名为 VvALMT9。表达谱显示,VvALMT9在浆果中果皮组织中持续表达,其转录水平在果实成熟过程中增加。此外,我们发现 VvALMT9 定位于液泡膜。通过膜片钳分析,我们可以证明,除了苹果酸,VvALMT9还介导了高于其拟南芥同源物的酒石酸盐电流。总之,在本研究中,我们提供了证据表明,VvALMT9 是一种在葡萄浆果中表达的液泡苹果酸通道。有趣的是,在葡萄(Vitis vinifera)这种产酒石酸的植物中,通道的通透性显然可以调节 TA。