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Design, characterization and in vivo functioning of a light-dependent histidine protein kinase in the yeast Saccharomyces cerevisiae

机译:酵母酿酒酵母中光依赖性组氨酸蛋白激酶的设计,表征和体内功能

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摘要

Helical alignment of the α-helical linker of the LOV (light-oxygen-voltage) domain of YtvA from Bacillus subtilis with the α-helical linker of the histidine-protein kinase domain of the Sln1 kinase of the phospho-relay system for osmoregulation of Saccharomyces cerevisiae has been used to construct a light-modulatable histidine protein kinase. In vitro, illumination with blue light inhibits both the ATP-dependent phosphorylation of this hybrid kinase, as well as the phosphoryl transfer to Ypd1, the phosphoryl transfer domain of the Sln1 system. The helical alignment was carried out with conservation of the complete Jα helix of YtvA, as well as of the phosphorylatable histidine residue of the Sln1 kinase, with conservation of the hepta-helical motive of coiled-coil structures, recognizable in the helices of the two separate, constituent, proteins. Introduction of the gene encoding this hybrid histidine protein kinase into cells of S. cerevisiae in which the endogenous Sln1 kinase had been deleted, allowed us to modulate gene expression in the yeast cells with (blue) light. This was first demonstrated via the light-induced alteration of the expression level of the mannosyl-transferase OCH1, via a translational-fusion approach. As expected, illumination decreased the expression level of OCH1; the steady state decrease in saturating levels of blue light was about 40%. To visualize the in vivo functionality of this light-dependent regulation system, we fused the green fluorescent protein (GFP) to another regulatory protein, HOG1, which is also responsive to the Sln1 kinase. HOG1 is phosphorylated by the MAP-kinase-kinase Pbs2, which in turn is under control of the Sln1 kinase, via the phosphoryl transfer domain Ypd1. Fluorescence microscopy was used to show that illumination of cells that contained the combination of the hybrid kinase and the HOG1::GFP fusion protein, led to a persistent increase in the level of nuclear accumulation of HOG1, in contrast to salt stress, which—as expected—showed the well-characterized transient response. The system described in this study will be valuable in future studies on the role of cytoplasmic diffusion in signal transduction in eukaryotic cells. Electronic supplementary material The online version of this article (10.1186/s13568-018-0582-7) contains supplementary material, which is available to authorized users.
机译:枯草芽孢杆菌的YtvA的LOV(轻-氧-电压)结构域的α-螺旋接头与磷中继系统的Sln1激酶的组氨酸-蛋白激酶结构域的α-螺旋接头进行螺旋比对,用于渗透调节酿酒酵母已经用于构建光可调节的组氨酸蛋白激酶。在体外,用蓝光照射既抑制了该杂合激酶的ATP依赖性磷酸化,又抑制了磷酰基转移至Ypd1(Sln1系统的磷酰基转移域)。螺旋排列是通过保留完整的YtvA的Jα螺旋以及Sln1激酶的可磷酸化组氨酸残基来进行的,同时保留了螺旋螺旋结构的七螺旋动机,这在两个螺旋中都是可识别的。分离的组成蛋白。将编码这种杂合组氨酸蛋白激酶的基因导入已缺失内源性Sln1激酶的酿酒酵母细胞中,使我们能够用(蓝光)调节酵母细胞中的基因表达。这首先通过翻译融合方法通过光诱导的甘露糖基转移酶OCH1表达水平的改变而得到证明。不出所料,光照降低了OCH1的表达水平。稳定状态下,蓝光的饱和水平下降约40%。为了可视化此光依赖性调节系统的体内功能,我们将绿色荧光蛋白(GFP)与另一个调节蛋白HOG1融合,该蛋白也对Sln1激酶有反应。 HOG1被MAP激酶激酶Pbs2磷酸化,而MAP激酶激酶Pbs2则通过磷酰基转移域Ypd1受到Sln1激酶的控制。荧光显微镜用于显示含有杂合激酶和HOG1 :: GFP融合蛋白组合的细胞的照明导致HOG1的核积累水平持续增加,这与盐胁迫相反,后者是盐胁迫。预期-显示了特征明确的瞬态响应。在这项研究中描述的系统将对未来的细胞质扩散在真核细胞信号转导中的作用的研究中有价值。电子补充材料本文的在线版本(10.1186 / s13568-018-0582-7)包含补充材料,授权用户可以使用。

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