Liu Jing, Wang Zhi-Kang, Sun Huan-Huan, Ying Sheng-Hua, Feng Ming-Guang
Institute of Microbiology, College of Life Sciences, Zhejiang University, Hangzhou, Zhejiang, 310058, People's Republic of China.
Environ Microbiol. 2017 May;19(5):1808-1821. doi: 10.1111/1462-2920.13671. Epub 2017 Mar 8.
High-osmolarity glycerol (HOG) pathway required for yeast osmoregulation relies upon the mitogen-activated protein kinase (MAPK) Hog1 cascade that comprise the MAPKKKs Ssk2/Ssk22 and Ste11 converging on the MAPKK Pbs2. Here we show a Hog1 cascade with the unique MAPKKK Ssk2 acting in Beauveria bassiana. Hypersensitivity to high osmolarity and high resistance to fludioxonil fungicide appeared in Δssk2, Δpbs2 and Δhog1 mutants whereas the two hallmark phenotypes were reversed in Δste11. Increased sensitivity to heat shock and decreased sensitivity to cell wall perturbation also occurred in the three mutants but not in Δste11 although antioxidant phenotypes were different in all deletion mutants. Intriguingly, signals of Hog1 phosphorylation induced by osmotic, oxidative and thermal cues were present in Δste11 but absent in Δssk2 and Δpbs2. Moreover, vegetative growth on minimal media with different carbon/nitrogen sources was much more suppressed in Δste11 and Δssk2 than in Δpbs2 and Δhog1 although all mutants suffered similar, but severe, conidiation defects on a standard medium. Normal host infection was abolished in Δste11 while virulence was differentially attenuated in other mutants. Our findings exclude Ste11 from the Hog1 cascade that regulates multiple stress responses and environmental adaptation of B. bassiana and perhaps other filamentous fungi.
酵母渗透调节所需的高渗甘油(HOG)途径依赖于丝裂原活化蛋白激酶(MAPK)Hog1级联反应,该级联反应由MAPKKKs Ssk2/Ssk22和Ste11汇聚于MAPKK Pbs2组成。在此,我们展示了一种在球孢白僵菌中起作用的具有独特MAPKKK Ssk2的Hog1级联反应。Δssk2、Δpbs2和Δhog1突变体对高渗透压表现出超敏反应,对氟啶肟菌酯杀菌剂具有高抗性,而在Δste11中这两种标志性表型则相反。这三个突变体对热激的敏感性增加,对细胞壁扰动的敏感性降低,但在Δste11中未出现这种情况,尽管所有缺失突变体的抗氧化表型有所不同。有趣的是,在Δste11中存在由渗透、氧化和热信号诱导的Hog1磷酸化信号,而在Δssk2和Δpbs2中则不存在。此外,在含有不同碳/氮源的基本培养基上,Δste11和Δssk2中的营养生长比Δpbs2和Δhog1受到的抑制要大得多,尽管所有突变体在标准培养基上都遭受了相似但严重的分生孢子形成缺陷。Δste11中正常的宿主感染被消除,而其他突变体的毒力则有不同程度的减弱。我们的研究结果表明,Ste11不参与调节球孢白僵菌以及可能其他丝状真菌的多种应激反应和环境适应性的Hog1级联反应。