A.N. Bach Institute of Biochemistry of the Russian Academy of Sciences, Moscow, Russia.
Cell Cycle. 2012 Feb 15;11(4):778-84. doi: 10.4161/cc.11.4.19220.
The vacuolar Ca(2+) ATPase Pmc1 is involved in maintenance of a low Ca(2+) concentration in cytosol in yeast cells. Here we observed that increase of Ca(2+) cytosolic concentration in yeast Hansenula polymorpha due to inactivation of Pmc1 resulted in sensitivity to sodium dodecyl sulfate (SDS). To elucidate the mechanisms of the observed effect, a screening for mutations suppressing SDS sensitivity of the H. polymorpha pmc1 mutant was performed. As a result, three genes were identified. Two of them, designated as their Saccharomyces cerevisiae orthologs CCH1 and HOG1 encoded the plasma membrane voltage-gated high-affinity calcium channel and the MAP kinase involved in osmoregulation, respectively. The third gene, designated as WEE1, coded for the ortholog of Wee1/Swe1 kinase involved in cell cycle regulation by inhibiting of the G(2)/M transition. Detailed analysis of this mutant demonstrated that suppression of pmc1 SDS sensitivity by the wee1 mutation depended on an accompanying chromosomal rearrangement, whereas inactivation of WEE1 in the absence of this rearrangement caused SDS sensitivity. Expression of a chimeric protein containing an N-terminal portion of Wee1 in the pmc1 mutant led to abnormal morphology characteristic of G(2) delay. Our data indicate that cytosolic Ca(2+) rise causes SDS sensitivity in H. polymorpha through the activation of the Wee1 kinase, which is mediated by the Hog1 kinase. Wee1 has a dual role in the manifestation of SDS sensitivity in the H. polymorpha pmc1 mutant. Mechanisms of influence of the obtained mutations on the G(2)/M transition are discussed.
液泡型 Ca(2+)ATP 酶 Pmc1 参与酵母细胞中细胞质中低 Ca(2+)浓度的维持。在这里,我们观察到由于 Pmc1 的失活导致酵母汉逊德巴利酵母细胞内 Ca(2+)胞质浓度增加导致对十二烷基硫酸钠 (SDS) 的敏感性。为了阐明观察到的效应的机制,进行了筛选以鉴定抑制 H. polymorpha pmc1 突变体对 SDS 敏感性的突变。结果,鉴定了三个基因。其中两个,分别命名为它们的酿酒酵母直系同源物 CCH1 和 HOG1,编码质膜电压门控高亲和力钙通道和参与渗透调节的 MAP 激酶。第三个基因,命名为 WEE1,编码参与细胞周期调控的 Wee1/Swe1 激酶的直系同源物,通过抑制 G(2)/M 转换来抑制细胞周期调控。对该突变体的详细分析表明,wee1 突变对 pmc1 SDS 敏感性的抑制依赖于伴随的染色体重排,而在没有这种重排的情况下失活 WEE1 会导致 SDS 敏感性。在 pmc1 突变体中表达包含 Wee1 N 端部分的嵌合蛋白会导致 G(2)延迟的异常形态特征。我们的数据表明,细胞质 Ca(2+)升高通过激活 Hog1 激酶介导的 Wee1 激酶导致 H. polymorpha 对 SDS 的敏感性,Wee1 在 H. polymorpha pmc1 突变体中 SDS 敏感性的表现中具有双重作用。讨论了获得的突变对 G(2)/M 转变的影响机制。