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Genome Wide Phosphoproteome Analysis of Zymomonas mobilis Under Anaerobic Aerobic and N2-Fixing Conditions

机译:厌氧好氧和N2-固定条件下运动发酵单胞菌的全基因组磷酸化蛋白质组分析

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摘要

Protein phosphorylation is a post-translational modification with widespread regulatory roles in both eukaryotes and prokaryotes. Using mass spectrometry, we performed a genome wide investigation of protein phosphorylation in the non-model organism and biofuel producer Zymomonas mobilis under anaerobic, aerobic, and N2-fixing conditions. Our phosphoproteome analysis revealed 125 unique phosphorylated proteins, belonging to major pathways such as glycolysis, TCA cycle, electron transport, nitrogen metabolism, and protein synthesis. Quantitative analysis revealed significant and widespread changes in protein phosphorylation across growth conditions. For example, we observed increased phosphorylation of nearly all glycolytic enzymes and a large fraction of ribosomal proteins during aerobic and N2-fixing conditions. We also observed substantial changes in the phosphorylation status of enzymes and regulatory proteins involved in nitrogen fixation and ammonia assimilation during N2-fixing conditions, including nitrogenase, the Rnf electron transport complex, the transcription factor NifA, GS-GOGAT cycle enzymes, and the PII regulatory protein. This suggested that protein phosphorylation may play an important role at regulating all aspects of nitrogen metabolism in Z. mobilis. This study provides new knowledge regarding the specific pathways and cellular processes that may be regulated by protein phosphorylation in this important industrial organism and provides a useful road map for future experiments that investigate the physiological role of specific phosphorylation events in Z. mobilis.
机译:蛋白质磷酸化是翻译后修饰,在真核生物和原核生物中均具有广泛的调节作用。使用质谱法,我们在厌氧,好氧和N2固定条件下,对非模型生物和生物燃料生产商运动发酵单胞菌中的蛋白质磷酸化进行了全基因组研究。我们的磷酸化蛋白质组分析揭示了125种独特的磷酸化蛋白质,它们属于主要途径,例如糖酵解,TCA循环,电子传输,氮代谢和蛋白质合成。定量分析揭示了在整个生长条件下蛋白质磷酸化的显着和广泛变化。例如,我们观察到在需氧和固氮条件下,几乎所有糖酵解酶和大部分核糖体蛋白的磷酸化增加。我们还观察到N2固定条件下参与固氮和氨同化的酶和调节蛋白的磷酸化状态发生了实质性变化,包括固氮酶,Rnf电子转运复合体,转录因子NifA,GS-GOGAT循环酶和PII调节蛋白。这表明蛋白质的磷酸化可能在调节运动发酵单胞菌氮代谢的各个方面发挥重要作用。这项研究提供了有关这种重要的工业有机体中可能受蛋白质磷酸化调控的特定途径和细胞过程的新知识,并为今后研究运动发酵单胞菌中特定磷酸化事件的生理作用的实验提供了有用的路线图。

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