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朱顶红杂交种PepR1基因(HpPepR1)编码一种功能性鸟苷酸环化酶,并参与对真菌感染的早期反应。

The Hippeastrum hybridum PepR1 gene (HpPepR1) encodes a functional guanylyl cyclase and is involved in early response to fungal infection.

作者信息

Świeżawska Brygida, Jaworski Krzysztof, Duszyn Maria, Pawełek Agnieszka, Szmidt-Jaworska Adriana

机构信息

Nicolaus Copernicus University, Chair of Plant Physiology and Biotechnology, Lwowska St. 1, PL 87-100, Torun, Poland.

出版信息

J Plant Physiol. 2017 Sep;216:100-107. doi: 10.1016/j.jplph.2017.05.024. Epub 2017 Jun 1.

Abstract

It is generally known that cyclic GMP widespread in prokaryotic and eukaryotic cells, is involved in essential cellular processes and stress signal transduction. However, in contrast to animals the knowledge about plant guanylyl cyclases (GCs) which catalyze the formation of cGMP from GTP is still quite obscure. Recent studies of plant GCs are focused on identification and functional analysis of a new family of membrane proteins called "moonlighting kinases with GC activity" with guanylyl cyclase catalytic center encapsulated within intracellular kinase domain. Here we report identification and characterization of plasma membrane receptor of peptide signaling molecules - HpPepR1 in Hippeastrum hybridum. Both bioinformatic analysis of amimo acid sequence and in vitro studies revealed that the protein can act as guanylyl cyclase. The predicted amino acid sequence contains highly conserved 14 aa-long search motif in the catalytic center of GCs from lower and higher eukaryotes. Here, we provide experimental evidence to show that the intracellular domain of HpPepR1 can generate cGMP in vitro. Moreover, it was shown that the accumulation of HpPepR1 transcript was sharply increased after Peyronellaea curtisii (=Phoma narcissi) fungal infection, whereas mechanical wounding has no influence on expression profile of studied gene. These results may indicate the participation of cGMP-dependent pathway in rapid, alarm plant reactions induced by pathogen infection.

摘要

众所周知,环鸟苷酸(cGMP)广泛存在于原核细胞和真核细胞中,参与细胞的基本生理过程和应激信号转导。然而,与动物不同的是,关于催化GTP形成cGMP的植物鸟苷酸环化酶(GCs)的知识仍然相当匮乏。最近对植物GCs的研究集中在对一类新的膜蛋白的鉴定和功能分析上,这类蛋白被称为“具有GC活性的兼职激酶”,其鸟苷酸环化酶催化中心封装在细胞内激酶结构域内。在此,我们报告了朱顶红中肽信号分子的质膜受体——HpPepR1的鉴定和特征。氨基酸序列的生物信息学分析和体外研究均表明,该蛋白可作为鸟苷酸环化酶发挥作用。预测的氨基酸序列在低等和高等真核生物的GCs催化中心含有高度保守的14个氨基酸长的搜索基序。在此,我们提供实验证据表明HpPepR1的细胞内结构域在体外可产生cGMP。此外,研究表明,在感染柯氏盘长孢菌(=水仙茎点霉)后,HpPepR1转录本的积累急剧增加,而机械损伤对所研究基因的表达谱没有影响。这些结果可能表明cGMP依赖途径参与了植物对病原体感染诱导的快速警报反应。

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