Du Muyun, Xie Yongbo, Wang Meng, Yang Huan, Hu Banghui, Mukhtar Irum, Liu Yuanyuan, Tao Yongxin, Liu Fang, Xie Baogui
Mycological Research Center, College of Life Science, Fujian Agriculture and Forestry University, Fuzhou 350002, China.
Institute of Soil and Fertilizer, Guizhou Academy of Agricultural Sciences, Guiyang 550006, China.
J Fungi (Basel). 2022 Apr 14;8(4):401. doi: 10.3390/jof8040401.
is a popular mushroom which has been regarded as a potential model fungus for mycelium growth, fruiting body development, and stress response studies. Based on a genome-wide search, four genes encoding heterotrimeric G protein α subunits were identified in . The data of conserved domain analysis showed that these genes contain only one subgroup I of Gα subunit (Gαi), similar to many other fungi. To explore the function of Gαi, over-expression (OE) and RNA interference (RNAi) strains were generated using the -mediated transformation (ATMT) approach. RNAi transformant strains showed remarkably reduced growth on PDA medium and added sensitivity to cell wall-enforcing agents with maximum growth inhibition, but showed better growth in response to hypertonic stress-causing agents, while OE strains exhibited more resistance to thermal stress and mycoparasite as compared to the wild-type and RNAi strains. Taken together, our results indicated that positively regulates hyphal extension, and is crucial for the maintenance of cell wall integrity and protection against biotic and abiotic (hypertonic and thermal) stress.
是一种常见的蘑菇,已被视为用于菌丝体生长、子实体发育和应激反应研究的潜在模式真菌。基于全基因组搜索,在 中鉴定出四个编码异源三聚体 G 蛋白 α 亚基的基因。保守结构域分析数据表明,这些基因仅包含 Gα 亚基的一个 I 亚组(Gαi),与许多其他真菌相似。为了探究 Gαi 的功能,使用 介导的转化(ATMT)方法构建了过表达(OE)和 RNA 干扰(RNAi)菌株。RNAi 转化菌株在 PDA 培养基上生长显著降低,对细胞壁强化剂的敏感性增加,生长受到最大抑制,但对引起高渗胁迫的试剂反应时生长较好,而 OE 菌株与野生型和 RNAi 菌株相比,对热胁迫和真菌寄生菌表现出更强的抗性。综上所述,我们的结果表明 正向调节菌丝延伸,对于维持细胞壁完整性以及抵抗生物和非生物(高渗和热)胁迫至关重要。