Zhu Jing, Ying Sheng-Hua, Feng Ming-Guang
Institute of Microbiology, College of Life Sciences, Zhejiang University, Hangzhou, Zhejiang, 310058, China.
Appl Microbiol Biotechnol. 2016 May;100(10):4423-33. doi: 10.1007/s00253-016-7282-5. Epub 2016 Jan 12.
The Pal/Rim pathway essential for fungal adaptation to ambient pH has been unexplored in Beauveria bassiana, a classic fungal entomopathogen. Here, we show the characterized Pal pathway comprising transcription factor PacC and upstream six Pal partners (PalA/B/C/F/H/I) in B. bassiana. Their coding genes were all transcribed most abundantly in standard wild-type culture under the alkaline condition of pH 9. Deletion of pacC or each pal gene resulted in a significant delay of culture acidification in a minimal broth (initial pH = 7.3). This delay concurred with altered accumulation levels of intra/extracellular organic acids and drastically depressed expression of some enzyme genes required for the syntheses of oxalic and lactic acids. Our deletion mutants except ΔpalI showed growth defects and maximal sensitivity to NaCl, KCl, LiCl, or sorbitol at pH 9, an alkaline condition leading to fragmented vacuoles in their hyphal cells exposed to osmotic stress. In these mutants, conidiation was significantly facilitated at pH 3 more than at pH 7 but suppressed slightly at pH 9. Mild virulence defects also occurred in the absence of pacC or any pal gene. These changes were restored by targeted gene complementation. Taken together, PacC and Pal partners regulate the growth, conidiation, and osmotolerance of B. bassiana in a pH-dependent manner, highlighting their vitality for the fungal pH response.
对于经典的真菌病原白僵菌而言,其适应环境pH值所必需的Pal/Rim途径尚未得到研究。在此,我们展示了白僵菌中由转录因子PacC和上游六个Pal伴侣(PalA/B/C/F/H/I)组成的特征性Pal途径。它们的编码基因在pH 9的碱性条件下于标准野生型培养物中均转录最为丰富。缺失pacC或每个pal基因会导致在基本肉汤(初始pH = 7.3)中培养物酸化显著延迟。这种延迟与细胞内/外有机酸积累水平的改变以及草酸和乳酸合成所需的一些酶基因的表达大幅降低同时出现。除ΔpalI外,我们的缺失突变体在pH 9时表现出生长缺陷以及对NaCl、KCl、LiCl或山梨醇的最大敏感性,pH 9这种碱性条件会导致其菌丝细胞在受到渗透胁迫时液泡碎片化。在这些突变体中,pH 3时的产孢比pH 7时显著增加,但在pH 9时略有抑制。在缺失pacC或任何pal基因时也会出现轻微的毒力缺陷。通过靶向基因互补可恢复这些变化。综上所述,PacC和Pal伴侣以pH依赖的方式调节白僵菌的生长、产孢和渗透耐受性,突出了它们在真菌pH反应中的重要性。