Departamento de Genética Molecular, Instituto de Fisiología Celular, Universidad Nacional Autónoma de México, Ciudad Universitaria, 04510, México City, CDMX, México.
Departamento de Biología Celular, Facultad de Ciencias, Universidad Nacional Autónoma de México. Ciudad Universitaria, 04510, México City, CDMX, México.
Curr Genet. 2020 Dec;66(6):1135-1153. doi: 10.1007/s00294-020-01099-3. Epub 2020 Jul 27.
Halotolerant species are adapted to dealing continually with hyperosmotic environments, having evolved strategies that are uncommon in other organisms. The HOG pathway is the master system that regulates the cellular adaptation under these conditions; nevertheless, apart from the importance of Debaryomyces hansenii as an organism representative of the halotolerant class, its HOG1 pathway has been poorly studied, due to the difficulty of applying conventional recombinant DNA technology. Here we describe for the first time the phenotypic characterisation of a null HOG1 mutant of D. hansenii. Dhhog1Δ strain was found moderately resistant to 1 M NaCl and sensitive to higher concentrations. Under hyperosmotic shock, DhHog1 fully upregulated transcription of DhSTL1 and partially upregulated that of DhGPD1. High osmotic stress lead to long-term inner glycerol accumulation that was partially dependent on DhHog1. These observations indicated that the HOG pathway is required for survival under high external osmolarity but dispensable under low and mid-osmotic conditions. It was also found that DhHog1 can regulate response to alkali stress during hyperosmotic conditions and that it plays a role in oxidative and endoplasmic reticulum stress. Taken together, these results provide new insight into the contribution of this MAPK in halotolerance of this yeast.
耐盐物种适应持续应对高渗环境,进化出了在其他生物中不常见的策略。HOG 途径是调节这些条件下细胞适应的主系统;然而,除了德巴利酵母 Hansen 作为耐盐类代表生物的重要性之外,由于难以应用常规的重组 DNA 技术,其 HOG1 途径的研究也很少。在这里,我们首次描述了德巴利酵母 Hansen 缺失 HOG1 突变体的表型特征。Dhhog1Δ 菌株对 1 M NaCl 中度耐受,对更高浓度敏感。在高渗冲击下,DhHog1 完全上调 DhSTL1 的转录,部分上调 DhGPD1 的转录。高渗透压应激导致甘油的长期积累,这在一定程度上依赖于 DhHog1。这些观察结果表明,HOG 途径是在高渗透压下生存所必需的,但在低渗透压和中渗透压条件下是可有可无的。还发现 DhHog1 可以在高渗条件下调节对碱应激的反应,并且在氧化应激和内质网应激中发挥作用。总之,这些结果为该 MAPK 在该酵母的耐盐性中的作用提供了新的见解。