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从极端耐盐黑酵母 Hortaea werneckii 中鉴定和表征假定的渗透压传感器 HwSho1A 和 HwSho1B。

Identification and characterization of putative osmosensors, HwSho1A and HwSho1B, from the extremely halotolerant black yeast Hortaea werneckii.

机构信息

Institute of Biochemistry, Faculty of Medicine, University of Ljubljana, Vrazov Trg 2, SI-1000 Ljubjana, Slovenia.

出版信息

Fungal Genet Biol. 2011 May;48(5):475-84. doi: 10.1016/j.fgb.2011.01.011. Epub 2011 Jan 31.

Abstract

In Saccharomyces cerevisiae, the Sho1 protein is one of two potential osmosensors that can activate the kinase cascade of the HOG pathway in response to increased extracellular osmolarity. Two novel SHO1-like genes, HwSHO1A and HwSHO1B, have been cloned from the saltern-inhabiting, extremely halotolerant black yeast Hortaea werneckii. The HwSho1 protein isoforms are 93.8% identical in their amino-acid sequences, and have a conserved SH3 domain. When the HwSHO1 genes were transferred into S. cerevisae cells lacking the SHO1 gene, both of the HwSho1 isoforms fully complemented the function of the native S. cerevisiae Sho1 protein. Through microscopic and biochemical validation, we demonstrate that in S. cerevisiae, both of the HwSho1 proteins have characteristic subcellular localizations similar to the S. cerevisiae Sho1 protein, and they can both activate the HOG pathway under conditions of osmotic stress. To a lower extent, crosstalk to the mating pathway expressing HwSho1 proteins is conserved in the PBS2 deleted S. cerevisiae strain. These data show that the HwSho1 proteins from H. werneckii are true functional homologs of the Sho1 protein of S. cerevisiae.

摘要

在酿酒酵母中,Sho1 蛋白是两种潜在的渗透压感受器之一,可以在细胞外渗透压增加时激活 HOG 途径的激酶级联反应。从耐盐性极强的黑色酵母盐生威克汉姆酵母中克隆了两个新的 SHO1 样基因 HwSHO1A 和 HwSHO1B。HwSho1 蛋白同工型在其氨基酸序列中具有 93.8%的同源性,并具有保守的 SH3 结构域。当 HwSHO1 基因被转移到缺乏 SHO1 基因的酿酒酵母细胞中时,两种 HwSho1 同工型都完全补充了天然酿酒酵母 Sho1 蛋白的功能。通过显微镜观察和生化验证,我们证明在酿酒酵母中,两种 HwSho1 蛋白都具有类似于酿酒酵母 Sho1 蛋白的特征亚细胞定位,并且它们都可以在渗透压胁迫条件下激活 HOG 途径。在 PBS2 缺失的酿酒酵母菌株中,HwSho1 蛋白的交配途径的串扰表达也被保守。这些数据表明,来自盐生威克汉姆酵母的 HwSho1 蛋白是酿酒酵母 Sho1 蛋白的真正功能同源物。

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