Estill Molly, Kerwin-Iosue Christine L, Wykoff Dennis D
Department of Biology, Villanova University, Villanova, PA, 19085, USA.
Curr Genet. 2015 May;61(2):175-83. doi: 10.1007/s00294-014-0466-6. Epub 2014 Dec 30.
In Saccharomyces cerevisiae, intracellular phosphate levels are maintained by the PHO pathway, activation of which is assayed by increased phosphatase activity. The PHO pathway of Schizosaccharomyces pombe upregulates phosphatase activity (encoded by pho1 (+)) during low extracellular phosphate levels, but the underlying mechanism is poorly understood. We utilized an alternate repressor of pho1 (+) expression (adenine supplementation) along with epistasis analysis to develop a model of how S. pombe PHO pathway components interact. Analyzing Pho1 activity in S. pombe PHO pathway deletion mutants during adenine starvation, we observed most mutants with a phosphatase defect in phosphate starvation also had a defect in adenine starvation. Pho7, a transcription factor in the PHO pathway, is necessary for an adenine starvation-mediated increase in Pho1 activity. Comparing adenine starvation to phosphate starvation, there are differences in the degree to which individual mutants regulate the two responses. Through epistasis studies, we identified two positive regulatory arms and one repressive arm of the PHO pathway. PKA activation is a positive regulator of Pho1 activity under both environmental conditions and is critical for transducing adenine concentrations in the cell. The synthesis of IP7 also appears critical for the induction of Pho1 activity during adenine starvation, but IP7 is not critical during phosphate starvation, which differs from S. cerevisiae. Finally, Csk1 is critical for repression of pho1 (+) expression during phosphate starvation. We believe all of these regulatory arms converge to increase transcription of pho1 (+) and some of the regulation acts through pho7 (+).
在酿酒酵母中,细胞内的磷酸盐水平由PHO途径维持,该途径的激活通过磷酸酶活性的增加来检测。粟酒裂殖酵母的PHO途径在细胞外磷酸盐水平较低时会上调磷酸酶活性(由pho1(+)编码),但其潜在机制尚不清楚。我们利用pho1(+)表达的替代阻遏物(腺嘌呤补充)以及上位性分析,来建立一个粟酒裂殖酵母PHO途径成分如何相互作用的模型。在腺嘌呤饥饿期间分析粟酒裂殖酵母PHO途径缺失突变体中的Pho1活性,我们观察到在磷酸盐饥饿中具有磷酸酶缺陷的大多数突变体在腺嘌呤饥饿中也有缺陷。Pho7是PHO途径中的一种转录因子,对于腺嘌呤饥饿介导的Pho1活性增加是必需的。将腺嘌呤饥饿与磷酸盐饥饿进行比较,各个突变体调节这两种反应的程度存在差异。通过上位性研究,我们确定了PHO途径的两个正调控臂和一个抑制臂。PKA激活在两种环境条件下都是Pho1活性的正调节剂,并且对于转导细胞中的腺嘌呤浓度至关重要。IP7的合成在腺嘌呤饥饿期间对Pho1活性的诱导似乎也很关键,但在磷酸盐饥饿期间IP7并不关键,这与酿酒酵母不同。最后,Csk1在磷酸盐饥饿期间对pho1(+)表达的抑制至关重要。我们认为所有这些调控臂共同作用以增加pho1(+)的转录,并且一些调节通过pho7(+)起作用。