Cui Zhouqi, Jin Guoqiang, Li Bin, Kakar Kaleem Ullah, Ojaghian Mohammad Reza, Wang Yangli, Xie Guanlin, Sun Guochang
State Key Laboratory of Rice Biology, Institute of Biotechnology, Zhejiang University, Hangzhou 310058, China.
Yuhang Extension and Service Center of Agriculture Technical, Hangzhou 311100, China.
Int J Mol Sci. 2015 Sep 11;16(9):22008-26. doi: 10.3390/ijms160922008.
Valine glycine repeat G (VgrG) proteins are regarded as one of two effectors of Type VI secretion system (T6SS) which is a complex multi-component secretion system. In this study, potential biological roles of T6SS structural and VgrG genes in a rice bacterial pathogen, Acidovorax avenae subsp. avenae (Aaa) RS-1, were evaluated under seven stress conditions using principle component analysis of gene expression. The results showed that growth of the pathogen was reduced by H₂O₂ and paraquat-induced oxidative stress, high salt, low temperature, and vgrG mutation, compared to the control. However, pathogen growth was unaffected by co-culture with a rice rhizobacterium Burkholderia seminalis R456. In addition, expression of 14 T6SS structural and eight vgrG genes was significantly changed under seven conditions. Among different stress conditions, high salt, and low temperature showed a higher effect on the expression of T6SS gene compared with host infection and other environmental conditions. As a first report, this study revealed an association of T6SS gene expression of the pathogen with the host infection, gene mutation, and some common environmental stresses. The results of this research can increase understanding of the biological function of T6SS in this economically-important pathogen of rice.
缬氨酸-甘氨酸重复序列G(VgrG)蛋白被认为是VI型分泌系统(T6SS)的两种效应蛋白之一,T6SS是一种复杂的多组分分泌系统。在本研究中,利用基因表达的主成分分析,评估了水稻细菌性病原菌燕麦嗜酸菌燕麦亚种(Aaa)RS-1中T6SS结构基因和VgrG基因在七种胁迫条件下的潜在生物学作用。结果表明,与对照相比,过氧化氢和百草枯诱导的氧化应激、高盐、低温以及vgrG突变均会降低病原菌的生长。然而,与水稻根际细菌精养伯克霍尔德氏菌R456共培养对病原菌生长没有影响。此外,在七种条件下,14个T6SS结构基因和8个vgrG基因的表达均发生了显著变化。在不同的胁迫条件中,与宿主感染和其他环境条件相比,高盐和低温对T6SS基因表达的影响更大。作为首次报道,本研究揭示了病原菌T6SS基因表达与宿主感染、基因突变以及一些常见环境胁迫之间的关联。本研究结果有助于增进对T6SS在这种重要水稻病原菌中的生物学功能的理解。