Anne Viefhues, Ina Schlathoelter, Adeline Simon, Muriel Viaud, Paul Tudzynski
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引用次数: 23
摘要
对每种生物的生活方式和生存来说,重要的是对不断变化的环境条件做出反应的能力。坏死性植物病原菌灰霉病菌(Botrytis cinerea)在植物感染过程中引发氧化爆发,因此需要有效的信号转导来应对这种胁迫。这一过程中所涉及的因素及其确切作用仍然不为人所知。在这里,我们发现转录因子Bap1和响应调节因子(RR) B. cinerea Skn7 (BcSkn7)是B. cinerea氧化应激反应(OSR)的两个关键参与者;两者都对经典OSR基因的调控有重要影响。酵母-单杂交(Y1H)方法证实Bap1直接结合gsh1和grx1启动子,BcSkn7直接结合glr1启动子。虽然Bap1的功能仅限于氧化应激调节,但对Δbcskn7突变体的分析显示其功能超出了OSR。BcSkn7参与了发育和毒力,这可以通过减少营养生长、破坏生殖结构的形成和减少突变体通过感染缓冲介导的宿主渗透来证明。此外,Δbcskn7突变体对氧化、渗透和细胞壁应激高度敏感。对Δbap1 bcskn7双突变体的分析表明,bcskn7的缺失揭示了Bap1的潜在表型。与酿酒酵母不同,Bap1的核易位不需要谷胱甘肽过氧化物酶Gpx3p的同源物。本文的研究结果有助于理解灰孢酵母的OSR,并证明它与酵母的OSR有很大的不同,表明了信号通路中涉及的成分的复杂性和多功能性。
Unraveling the Function of the Response Regulator BcSkn7 in the Stress Signaling Network of Botrytis cinerea.
Important for the lifestyle and survival of every organism is the ability to respond to changing environmental conditions. The necrotrophic plant pathogen Botrytis cinerea triggers an oxidative burst in the course of plant infection and therefore needs efficient signal transduction to cope with this stress. The factors involved in this process and their precise roles are still not well known. Here, we show that the transcription factor Bap1 and the response regulator (RR) B. cinerea Skn7 (BcSkn7) are two key players in the oxidative stress response (OSR) of B. cinerea; both have a major influence on the regulation of classical OSR genes. A yeast-one-hybrid (Y1H) approach proved direct binding to the promoters of gsh1 and grx1 by Bap1 and of glr1 by BcSkn7. While the function of Bap1 is restricted to the regulation of oxidative stress, analyses of Δbcskn7 mutants revealed functions beyond the OSR. Involvement of BcSkn7 in development and virulence could be demonstrated, indicated by reduced vegetative growth, impaired formation of reproductive structures, and reduced infection cushion-mediated penetration of the host by the mutants. Furthermore, Δbcskn7 mutants were highly sensitive to oxidative, osmotic, and cell wall stress. Analyses of Δbap1 bcskn7 double mutants indicated that loss of BcSkn7 uncovers an underlying phenotype of Bap1. In contrast to Saccharomyces cerevisiae, the ortholog of the glutathione peroxidase Gpx3p is not required for nuclear translocation of Bap1. The presented results contribute to the understanding of the OSR in B. cinerea and prove that it differs substantially from that of yeast, demonstrating the complexity and versatility of components involved in signaling pathways.
期刊介绍:
Eukaryotic Cell (EC) focuses on eukaryotic microbiology and presents reports of basic research on simple eukaryotic microorganisms, such as yeasts, fungi, algae, protozoa, and social amoebae. The journal also covers viruses of these organisms and their organelles and their interactions with other living systems, where the focus is on the eukaryotic cell. Topics include: - Basic biology - Molecular and cellular biology - Mechanisms, and control, of developmental pathways - Structure and form inherent in basic biological processes - Cellular architecture - Metabolic physiology - Comparative genomics, biochemistry, and evolution - Population dynamics - Ecology