Metabolic adaptation and ATP homeostasis in Pseudomonas fluorescens exposed to phosphate stress

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作者
Félix Legendre
Alex MacLean
Sujeenthar Tharmalingam
Vasu D. Appanna
机构
[1] Laurentian University,School of Natural Sciences
[2] Northern Ontario School of Medicine,undefined
来源
World Journal of Microbiology and Biotechnology | 2022年 / 38卷
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摘要
Phosphate (Pi) is essential for life as it is an integral part of the universal chemical energy adenosine triphosphate (ATP), and macromolecules such as, DNA, RNA proteins and lipids. Despite the core roles and the need of this nutrient in living cells, some bacteria can grow in environments that are poor in Pi. The metabolic mechanisms that enable bacteria to proliferate in a low phosphate environment are not fully understood. In this study, the soil microbe Pseudomonas (P.) fluorescens was cultured in a control and a low Pi (stress) medium in order to delineate how energy homeostasis is maintained. Although there was no significant variation in biomass yield in these cultures, metabolites like isocitrate, oxaloacetate, pyruvate and phosphoenolpyruvate (PEP) were markedly increased in the phosphate-starved condition. Components of the glycolytic, glyoxylate and tricarboxylic acid cycles operated in tandem to generate ATP by substrate level phosphorylation (SLP) as NADH-producing enzymes were impeded. The α-ketoglutarate (KG) produced when glutamine, the sole carbon nutrient was transformed into phosphoenol pyruvate (PEP) and succinyl-CoA (SC), two high energy moieties. The metabolic reprogramming orchestrated by isocitrate lyase (ICL), phosphoenolpyruvate synthase (PEPS), pyruvate phosphate dikinase (PPDK), and succinyl-CoA synthetase fulfilled the ATP budget. Cell free extract experiments confirmed ATP synthesis in the presence of such substrates as PEP, oxaloacetate and isocitrate respectively. Gene expression profiling revealed elevated transcripts associated with numerous enzymes including ICL, PEPS, and succinyl-CoA synthetase (SCS). This microbial adaptation will be critical in promoting biological activity in Pi-poor ecosystems.
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[1]  
Ahn S(2016)Role of Glyoxylate Shunt in Oxidative Stress Response J Biol Chem 291 11928-11938
[2]  
Jung J(1992)Gallium toxicity and adaptation in Pseudomonas fluorescens FEMS Microbiol Lett 92 265-272
[3]  
Jang I-A(2017)The role of glutamine synthetase in energy production and glutamine metabolism during oxidative stress Antonie Van Leeuwenhoek 110 629-639
[4]  
Al-Aoukaty A(2014)Zinc toxicity and ATP production in Pseudomonas fluorescens J Appl Microbiol 117 65-73
[5]  
Appanna VD(2019)Isocitrate Lyase and Succinate Semialdehyde Dehydrogenase Mediate the Synthesis of α-Ketoglutarate in Pseudomonas fluorescens Front Microbiol 10 1929-5269
[6]  
Falter H(2012)A Conserved Two-Component Signal Transduction System Controls the Response to Phosphate Starvation in Bifidobacterium breve UCC2003 Appl Environ Microbiol 78 5258-96
[7]  
Aldarini N(1992)A novel role for calcite in calcium homeostasis FEBS Lett 308 94-280
[8]  
Alhasawi AA(2017)The crucial role of protein phosphorylation in cell signaling and its use as targeted therapy (Review) Int J Mol Med 40 271-72
[9]  
Thomas SC(2015)Deciphering metabolic networks by blue native polyacrylamide gel electrophoresis: A functional proteomic exploration EuPA Open Proteomics 7 64-1101
[10]  
Appanna VD(2012)A facile electrophoretic technique to monitor phosphoenolpyruvate-dependent kinases Electrophoresis 33 1095-50