Marschall Robert, Tudzynski Paul
Institut für Biologie und Biotechnologie der Pflanzen, Westfälische Wilhelms-Universität MünsterMünster, Germany.
Front Microbiol. 2017 May 29;8:960. doi: 10.3389/fmicb.2017.00960. eCollection 2017.
is a filamentous plant pathogen, which infects hundreds of plant species; within its lifestyle, the production of reactive oxygen species (ROS) and a balanced redox homeostasis are essential parameters. The pathogen is capable of coping with the plant's oxidative burst and even produces its own ROS to enhance the plant's oxidative burst. Highly conserved NADPH oxidase (Nox) complexes produce the reactive molecules. The membrane-associated complexes regulate a large variety of vegetative and pathogenic processes. Besides their commonly accepted function at the plasma membrane, recent studies reveal that Nox complexes are also active at the membrane of the endoplasmic reticulum. In this study, we identified the essential ER protein BcPdi1 as new interaction partner of the NoxA complex in . Mutants that lack this ER chaperone display overlapping phenotypes to mutants of the NoxA signaling pathway. The protein appears to be involved in all major developmental processes, such as the formation of sclerotia, conidial anastomosis tubes and infection cushions (IC's) and is needed for full virulence. Moreover, expression analyses and reporter gene studies indicate that BcPdi1 affects the redox homeostasis and unfolded protein response (UPR)-related genes. Besides the close association between BcPdi1 and BcNoxA, interaction studies provide evidence that the ER protein might likewise be involved in Ca regulated processes. Finally, we were able to show that the potential key functions of the protein BcPdi1 might be affected by its phosphorylation state.
是一种丝状植物病原体,可感染数百种植物物种;在其生活方式中,活性氧(ROS)的产生和平衡的氧化还原稳态是至关重要的参数。该病原体能够应对植物的氧化爆发,甚至产生自身的ROS以增强植物的氧化爆发。高度保守的NADPH氧化酶(Nox)复合物产生反应性分子。膜相关复合物调节多种营养和致病过程。除了它们在质膜上普遍公认的功能外,最近的研究表明Nox复合物在内质网的膜上也具有活性。在本研究中,我们鉴定出内质网必需蛋白BcPdi1是NoxA复合物在中的新相互作用伙伴。缺乏这种内质网伴侣蛋白的突变体表现出与NoxA信号通路突变体重叠的表型。该蛋白似乎参与了所有主要的发育过程,如菌核、分生孢子吻合管和侵染垫(IC)的形成,并且是完全致病力所必需的。此外,表达分析和报告基因研究表明BcPdi1影响氧化还原稳态和未折叠蛋白反应(UPR)相关基因。除了BcPdi1和BcNoxA之间的密切关联外,相互作用研究提供了证据表明内质网蛋白可能同样参与钙调节过程。最后,我们能够证明蛋白BcPdi1的潜在关键功能可能受其磷酸化状态的影响。