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一种假定的膜蛋白Pho88p,参与酿酒酵母中的无机磷酸盐转运。

A putative membrane protein, Pho88p, involved in inorganic phosphate transport in Saccharomyces cerevisiae.

作者信息

Yompakdee C, Ogawa N, Harashima S, Oshima Y

机构信息

Department of Biotechnology, Faculty of Engineering, Osaka University, Japan.

出版信息

Mol Gen Genet. 1996 Jul 19;251(5):580-90. doi: 10.1007/BF02173648.

Abstract

Transcription of a regulatory gene, PHO81, in the phosphatase regulon of Saccharomyces cerevisiae is repressed by inorganic phosphate (Pi) in the medium via that same regulatory system. The activity of Pho81p, the product of PHO81, is also inhibited by a high concentration of Pi in the medium. Increased dosage of PHO86, a gene encoding a putative membrane protein associated with a Pi transporter complex, activates the Pi-inhibited Pho81p produced under the control of the GAL1 promoter. A new gene, PHO88/ YBR106w, has now been identified as a multicopy suppressor of the rAPase- phenotype of the cells caused by the Pi inhibition of Pho81p. The pho86 disruptant expressed rAPase activity in high-Pi medium, while the pho88 disruptant did not. The delta pho86 delta pho88 double disruption resulted in enhanced synthesis of rAPase under the high-Pi condition and conferred arsenate resistance on the cells than those in single disruptants of these genes. Its hydropathy profile and the results of an analysis of its cellular localization suggested that Pho88p is a membrane protein similar to Pho86p. Both disruption and high dosage of PHO88 or PHO86 resulted in reduced Pi uptake. These findings suggest that Pho88p is also involved in Pi transport and modulates Pho81p function together with Pho86p.

摘要

酿酒酵母磷酸酶调节子中调控基因PHO81的转录会被培养基中的无机磷酸盐(Pi)通过相同的调节系统所抑制。PHO81的产物Pho81p的活性也会被培养基中高浓度的Pi所抑制。编码一种与Pi转运体复合物相关的假定膜蛋白的基因PHO86剂量增加,会激活在GAL1启动子控制下产生的被Pi抑制的Pho81p。一个新基因PHO88/YBR106w现已被鉴定为因Pi抑制Pho81p而导致细胞rAPase表型的多拷贝抑制子。pho86缺失突变体在高Pi培养基中表达rAPase活性,而pho88缺失突变体则不表达。pho86Δpho88双缺失在高Pi条件下导致rAPase合成增强,并且与这些基因的单缺失突变体相比,赋予细胞对砷酸盐的抗性。其亲水性图谱及其细胞定位分析结果表明,Pho88p是一种与Pho86p类似的膜蛋白。PHO88或PHO86的缺失和高剂量都会导致Pi摄取减少。这些发现表明,Pho88p也参与Pi转运,并与Pho86p一起调节Pho81p的功能。

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