Cheetham Jill, Smith Deborah A, da Silva Dantas Alessandra, Doris Kathryn S, Patterson Miranda J, Bruce Catherine R, Quinn Janet
Institute for Cell and Molecular Biosciences, Faculty of Medical Sciences, Newcastle University, Newcastle upon Tyne NE2 4HH, United Kingdom.
Mol Biol Cell. 2007 Nov;18(11):4603-14. doi: 10.1091/mbc.e07-06-0581. Epub 2007 Sep 5.
The Hog1 mitogen-activated protein kinase (MAPK) plays a central role in stress responses in the human pathogen Candida albicans. Here, we have investigated the MAPK kinase kinase (MAPKKK)-dependent regulation of the pathway. In contrast to the Hog1 pathway in Saccharomyces cerevisiae, which is regulated by three MAPKKKs (Ssk2, Ssk22, and Ste11), our results demonstrate that Hog1 in C. albicans is regulated by a single MAPKKK Ssk2. Deletion of SSK2 results in comparable stress and morphological phenotypes exhibited by hog1Delta cells, and Ssk2 is required for the stress-induced phosphorylation and nuclear accumulation of Hog1, and for Hog1-dependent gene expression. Furthermore, phenotypes associated with deletion of SSK2 can be circumvented by expression of a phosphomimetic mutant of the MAPKK Pbs2, indicating that Ssk2 regulates Hog1 via activation of Pbs2. In S. cerevisiae, the Hog1 pathway is also regulated by the MAPKKK Ste11. However, we can find no connection between Ste11 and the regulation of Hog1 in C. albicans. Furthermore, expression of a chimeric Pbs2 protein containing the Ste11-dependent regulatory region of S. cerevisiae Pbs2, fails to stimulate Ste11-dependent stress signaling in C. albicans. Collectively, our data show that Ssk2 is the sole MAPKKK to relay stress signals to Hog1 in C. albicans and that the MAPK signaling network in C. albicans has diverged significantly from the corresponding network in S. cerevisiae.
Hog1丝裂原活化蛋白激酶(MAPK)在人类病原体白色念珠菌的应激反应中起核心作用。在此,我们研究了该途径中依赖丝裂原活化蛋白激酶激酶激酶(MAPKKK)的调控机制。与酿酒酵母中由三种MAPKKK(Ssk2、Ssk22和Ste11)调控的Hog1途径不同,我们的结果表明,白色念珠菌中的Hog1由单一的MAPKKK Ssk2调控。缺失SSK2会导致hog1Delta细胞表现出类似的应激和形态表型,并且Ssk2是应激诱导的Hog1磷酸化和核积累以及Hog1依赖性基因表达所必需的。此外,通过表达MAPKK Pbs2的拟磷酸化突变体可以规避与缺失SSK2相关的表型,这表明Ssk2通过激活Pbs2来调控Hog1。在酿酒酵母中,Hog1途径也由MAPKKK Ste11调控。然而,我们未发现Ste11与白色念珠菌中Hog1的调控之间存在联系。此外,表达含有酿酒酵母Pbs2的Ste11依赖性调控区域的嵌合Pbs2蛋白,未能在白色念珠菌中刺激Ste11依赖性应激信号传导。总体而言,我们的数据表明,Ssk2是白色念珠菌中唯一将应激信号传递给Hog1的MAPKKK,并且白色念珠菌中的MAPK信号网络与酿酒酵母中的相应网络有显著差异。