Gajewska Joanna, Floryszak-Wieczorek Jolanta, Kosmala Arkadiusz, Perlikowski Dawid, Żywicki Marek, Sobieszczuk-Nowicka Ewa, Judelson Howard S, Arasimowicz-Jelonek Magdalena
Department of Plant Ecophysiology, Institute of Experimental Biology, Faculty of Biology, Adam Mickiewicz University in Poznań, Poznań, Poland.
Department of Plant Physiology, Poznań University of Life Sciences, Poznań, Poland.
Front Plant Sci. 2023 Jul 20;14:1148222. doi: 10.3389/fpls.2023.1148222. eCollection 2023.
, a representative of phytopathogenic oomycetes, have been proven to cope with redundant sources of internal and host-derived reactive nitrogen species (RNS). To gain insight into its nitrosative stress resistance mechanisms, metabolic sensors activated in response to nitrosative challenge during both growth and colonization of the host plant were investigated. The conducted analyses of gene expression, protein accumulation, and enzyme activity reveal for the first time that (avirulent MP946 and virulent MP977 toward potato cv. Sarpo Mira) withstands nitrosative challenge and has an efficient system of RNS elimination. The obtained data indicate that the system protecting against nitric oxide (NO) involved the expression of the nitric oxide dioxygenase (Pi-NOD1) gene belonging to the globin family. The maintenance of RNS homeostasis was also supported by an elevated S-nitrosoglutathione reductase activity and upregulation of peroxiredoxin 2 at the transcript and protein levels; however, the virulence pattern determined the expression abundance. Based on the experiments, it can be concluded that possesses a multifarious system of metabolic sensors controlling RNS balance detoxification, allowing the oomycete to exist in different micro-environments flexibly.
作为植物致病卵菌的代表,已被证明能够应对内源性和宿主衍生的活性氮物质(RNS)的多种来源。为了深入了解其抗亚硝化应激机制,研究了在宿主植物生长和定殖过程中响应亚硝化挑战而激活的代谢传感器。对基因表达、蛋白质积累和酶活性进行的分析首次揭示,(对马铃薯品种Sarpo Mira无毒的MP946和有毒的MP977)能够抵御亚硝化挑战,并具有高效的RNS消除系统。获得的数据表明,保护其免受一氧化氮(NO)侵害的系统涉及属于珠蛋白家族的一氧化氮双加氧酶(Pi-NOD1)基因的表达。S-亚硝基谷胱甘肽还原酶活性的升高以及转录和蛋白质水平上过氧化物酶2的上调也支持了RNS稳态的维持;然而,毒力模式决定了表达丰度。基于这些实验,可以得出结论,具有一个控制RNS平衡解毒的多种代谢传感器系统,使卵菌能够灵活地存在于不同的微环境中。