Gerhardt Edileusa C M, Parize Erick, Gravina Fernanda, Pontes Flávia L D, Santos Adrian R S, Araújo Gillize A T, Goedert Ana C, Urbanski Alysson H, Steffens Maria B R, Chubatsu Leda S, Pedrosa Fabio O, Souza Emanuel M, Forchhammer Karl, Ganusova Elena, Alexandre Gladys, de Souza Gustavo A, Huergo Luciano F
Departamento de Bioquímica e Biologia Molecular, UFPR Curitiba, Curitiba, PR, Brazil.
Interfakultäres Institut für Mikrobiologie und Infektionsmedizin der Eberhard-Karls Universität Tübingen, Tübingen, Germany.
mSystems. 2020 Nov 3;5(6):e00817-20. doi: 10.1128/mSystems.00817-20.
The PII family comprises a group of widely distributed signal transduction proteins ubiquitous in prokaryotes and in the chloroplasts of plants. PII proteins sense the levels of key metabolites ATP, ADP, and 2-oxoglutarate, which affect the PII protein structure and thereby the ability of PII to interact with a range of target proteins. Here, we performed multiple ligand fishing assays with the PII protein orthologue GlnZ from the plant growth-promoting nitrogen-fixing bacterium to identify 37 proteins that are likely to be part of the PII protein-protein interaction network. Among the PII targets identified were enzymes related to nitrogen and fatty acid metabolism, signaling, coenzyme synthesis, RNA catabolism, and transcription. Direct binary PII-target complex was confirmed for 15 protein complexes using pulldown assays with recombinant proteins. Untargeted metabolome analysis showed that PII is required for proper homeostasis of important metabolites. Two enzymes involved in c-di-GMP metabolism were among the identified PII targets. A PII-deficient strain showed reduced c-di-GMP levels and altered aerotaxis and flocculation behavior. These data support that PII acts as a major metabolic hub controlling important enzymes and the homeostasis of key metabolites such as c-di-GMP in response to the prevailing nutritional status. The PII proteins sense and integrate important metabolic signals which reflect the cellular nutrition and energy status. Such extraordinary ability was capitalized by nature in such a way that the various PII proteins regulate different facets of metabolism by controlling the activity of a range of target proteins by protein-protein interactions. Here, we determined the PII protein interaction network in the plant growth-promoting nitrogen-fixing bacterium The interactome data along with metabolome analysis suggest that PII functions as a master metabolic regulator hub. We provide evidence that PII proteins act to regulate c-di-GMP levels and cell motility and adherence behaviors.
PII家族由一组广泛分布的信号转导蛋白组成,这些蛋白在原核生物和植物叶绿体中普遍存在。PII蛋白感知关键代谢物ATP、ADP和2-氧代戊二酸的水平,这些代谢物会影响PII蛋白的结构,进而影响PII与一系列靶蛋白相互作用的能力。在此,我们用来自促进植物生长的固氮细菌的PII蛋白同源物GlnZ进行了多次配体垂钓分析,以鉴定37种可能是PII蛋白-蛋白相互作用网络一部分的蛋白。在鉴定出的PII靶标中,有与氮和脂肪酸代谢、信号传导、辅酶合成、RNA分解代谢和转录相关的酶。使用重组蛋白进行的下拉分析证实了15种蛋白复合物存在直接的二元PII-靶标复合物。非靶向代谢组分析表明,PII是重要代谢物正常稳态所必需的。参与环二鸟苷酸(c-di-GMP)代谢的两种酶是已鉴定的PII靶标之一。一株PII缺陷型菌株显示c-di-GMP水平降低,趋氧性和絮凝行为改变。这些数据支持PII作为一个主要的代谢枢纽,响应当前的营养状况,控制重要酶和关键代谢物如c-di-GMP的稳态。PII蛋白感知并整合反映细胞营养和能量状态的重要代谢信号。大自然利用了这种非凡的能力,使得各种PII蛋白通过蛋白质-蛋白质相互作用控制一系列靶蛋白的活性,从而调节代谢的不同方面。在此,我们确定了促进植物生长的固氮细菌中的PII蛋白相互作用网络。相互作用组数据与代谢组分析表明,PII作为主要的代谢调节枢纽发挥作用。我们提供证据表明,PII蛋白起到调节c-di-GMP水平以及细胞运动性和黏附行为的作用。