Mavrianos John, Desai Chirayu, Chauhan Neeraj
Public Health Research Institute, New Jersey Medical School, Rutgers, The State University of New Jersey, Newark, New Jersey, USA.
Eukaryot Cell. 2014 Apr;13(4):452-60. doi: 10.1128/EC.00243-13. Epub 2014 Jan 31.
Prokaryotes and lower eukaryotes, such as yeasts, utilize two-component signal transduction pathways to adapt cells to environmental stress and to regulate the expression of genes associated with virulence. One of the central proteins in this type of signaling mechanism is the phosphohistidine intermediate protein Ypd1. Ypd1 is reported to be essential for viability in the model yeast Saccharomyces cerevisiae. We present data here showing that this is not the case for Candida albicans. Disruption of YPD1 causes cells to flocculate and filament constitutively under conditions that favor growth in yeast form. To determine the function of Ypd1 in the Hog1 mitogen-activated protein kinase (MAPK) pathway, we measured phosphorylation of Hog1 MAPK in ypd1Δ/Δ and wild-type strains of C. albicans. Constitutive phosphorylation of Hog1 was observed in the ypd1Δ/Δ strain compared to the wild-type strain. Furthermore, fluorescence microscopy revealed that green fluorescent protein (GFP)-tagged Ypd1 is localized to both the nucleus and the cytoplasm. The subcellular segregation of GFP-tagged Ypd1 hints at an important role(s) of Ypd1 in regulation of Ssk1 (cytosolic) and Skn7 (nuclear) response regulator proteins via phosphorylation in C. albicans. Overall, our findings have profound implications for a mechanistic understanding of two-component signaling pathways in C. albicans, and perhaps in other pathogenic fungi.
原核生物和低等真核生物,如酵母,利用双组分信号转导途径使细胞适应环境压力并调节与毒力相关基因的表达。这种信号传导机制的核心蛋白之一是磷酸组氨酸中间蛋白Ypd1。据报道,Ypd1对于模式酵母酿酒酵母的生存能力至关重要。我们在此展示的数据表明,白色念珠菌并非如此。YPD1的破坏会导致细胞在有利于酵母形式生长的条件下絮凝并持续形成菌丝。为了确定Ypd1在Hog1丝裂原活化蛋白激酶(MAPK)途径中的功能,我们测量了白色念珠菌ypd1Δ/Δ和野生型菌株中Hog1 MAPK的磷酸化。与野生型菌株相比,在ypd1Δ/Δ菌株中观察到Hog1的组成型磷酸化。此外,荧光显微镜显示绿色荧光蛋白(GFP)标记的Ypd1定位于细胞核和细胞质。GFP标记的Ypd1的亚细胞分离暗示了Ypd1在白色念珠菌中通过磷酸化调节Ssk1(胞质)和Skn7(核)应答调节蛋白方面的重要作用。总体而言,我们的发现对于深入理解白色念珠菌以及可能其他致病真菌中的双组分信号传导途径具有深远意义。