Conde Carlos, Agasse Alice, Glissant David, Tavares Rui, Gerós Hernâni, Delrot Serge
Departamento de Biologia, Universidade do Minho, Campus de Gualtar, 4710-057 Braga, Portugal.
Plant Physiol. 2006 Aug;141(4):1563-77. doi: 10.1104/pp.106.080804. Epub 2006 Jun 9.
Grape (Vitis vinifera) heterotrophic suspension-cultured cells were used as a model system to study glucose (Glc) transport and its regulation. Cells transported D-[14C]Glc according to simple Michaelis-Menten kinetics superimposed on first-order kinetics. The saturating component is a high-affinity, broad-specificity H+ -dependent transport system (Km = 0.05 mm). Glc concentration in the medium tightly regulated the transcription of VvHT1 (Vitis vinifera hexose transporter 1), a monosaccharide transporter previously characterized in grape berry, as well as VvHT1 protein amount and monosaccharide transport activity. All the remaining putative monosaccharide transporters identified so far in grape were poorly expressed and responded weakly to Glc. VvHT1 transcription was strongly repressed by Glc and 2-deoxy-D-Glc, but not by 3-O-methyl-D-Glc or Glc plus mannoheptulose, indicating the involvement of a hexokinase-dependent repression. 3-O-Methyl-D-Glc, which cannot be phosphorylated, and Glc plus mannoheptulose induced a decrease of transport activity caused by the reduction of VvHT1 protein in the plasma membrane without affecting VvHT1 transcript levels. This demonstrates hexokinase-independent posttranscriptional regulation. High Glc down-regulated VvHT1 transcription and Glc uptake, whereas low Glc increased those parameters. Present data provide an example showing control of plant sugar transporters by their own substrate both at transcriptional and posttranscriptional levels. VvHT1 protein has an important role in the massive import of monosaccharides into mesocarp cells of young grape berries because it was localized in plasma membranes of the early developing fruit. Protein amount decreased abruptly throughout fruit development as sugar content increases, consistent with the regulating role of Glc on VvHT1 expression found in suspension-cultured cells.
葡萄(Vitis vinifera)异养悬浮培养细胞被用作模型系统来研究葡萄糖(Glc)转运及其调控。细胞根据叠加在一级动力学上的简单米氏动力学转运D-[¹⁴C]Glc。饱和成分是一种高亲和力、广泛特异性的H⁺依赖性转运系统(Km = 0.05 mM)。培养基中的Glc浓度严格调控VvHT1(葡萄己糖转运蛋白1)的转录,VvHT1是一种先前在葡萄浆果中鉴定的单糖转运蛋白,以及VvHT1蛋白量和单糖转运活性。到目前为止在葡萄中鉴定出的所有其余推定单糖转运蛋白表达水平较低,对Glc的反应较弱。VvHT1转录受到Glc和2-脱氧-D-Glc的强烈抑制,但不受3-O-甲基-D-Glc或Glc加甘露庚酮的抑制,表明存在己糖激酶依赖性抑制作用。不能被磷酸化的3-O-甲基-D-Glc以及Glc加甘露庚酮导致转运活性降低,这是由于质膜中VvHT1蛋白减少所致,而不影响VvHT1转录水平。这证明了己糖激酶非依赖性的转录后调控。高浓度Glc下调VvHT1转录和Glc摄取,而低浓度Glc则增加这些参数。目前的数据提供了一个例子,表明植物糖转运蛋白在转录和转录后水平上都受到其自身底物的调控。VvHT1蛋白在幼嫩葡萄浆果中果皮细胞大量摄取单糖过程中起重要作用,因为它定位于早期发育果实的质膜中。随着果实发育过程中糖含量增加,蛋白量急剧下降,这与在悬浮培养细胞中发现的Glc对VvHT1表达的调控作用一致。