Department of Plant Sciences, School of Life Sciences, University of Hyderabad , P.O. Central University, Hyderabad 500 046, India.
Bacterial Discovery Laboratory, Centre for Environment, Institute of Science & Technology, Jawaharlal Nehru Technological University , Kukatpally, Hyderabad 500 085, Telangana, India.
J Proteome Res. 2018 Jan 5;17(1):189-202. doi: 10.1021/acs.jproteome.7b00500. Epub 2017 Nov 7.
Anoxygenic phototrophic bacteria are metabolically versatile and survive under different growth modes using diverse organic compounds, yet their metabolic diversity is largely unexplored. In the present study, we employed stable-isotope-assisted metabolic profiling to unravel the l-phenylalanine catabolism in Rubrivivax benzoatilyticus JA2 under varying growth modes. Strain JA2 grows under anaerobic and aerobic conditions by utilizing l-phenylalanine as a nitrogen source. Furthermore, ring-labeled C-phenylalanine feeding followed by liquid chromatography-mass spectrometry exometabolite profiling revealed 60 labeled metabolic features (M + 6, M + 12, and M + 18) derived solely from l-phenylalanine, of which 11 were identified, 7 putatively identified, and 42 unidentified under anaerobic and aerobic conditions. However, labeled metabolites were significantly higher in aerobic compared to anaerobic conditions. Furthermore, detected metabolites and enzyme activities indicated multiple l-phenylalanine catabolic routes mainly Ehrlich, homogentisate-dependent melanin, benzenoid, and unidentified pathways operating under anaerobic and aerobic conditions in strain JA2. Interestingly, the study indicated l-phenylalanine-dependent and independent benzenoid biosynthesis in strain JA2 and a differential flux of l-phenylalanine to Ehrlich and benzenoid pathways under anaerobic and aerobic conditions. Additionally, unidentified labeled metabolites strongly suggest the presence of unknown phenylalanine catabolic routes in strain JA2. Overall, the study uncovered the l-phenylalanine catabolic diversity in strain JA2 and demonstrated the potential of stable isotope-assisted metabolomics in unraveling the hidden metabolic repertoire.
贫养型光养细菌具有代谢多样性,能够在不同的生长模式下利用多种有机化合物生存,但它们的代谢多样性在很大程度上尚未得到探索。在本研究中,我们采用稳定同位素辅助代谢谱分析方法,揭示了 Rubrivivax benzoatilyticus JA2 在不同生长模式下的 l-苯丙氨酸代谢途径。JA2 菌株在厌氧和有氧条件下生长,利用 l-苯丙氨酸作为氮源。此外,通过环标记的 C-苯丙氨酸喂养和液相色谱-质谱外代谢产物谱分析,发现了 60 种仅源自 l-苯丙氨酸的标记代谢特征(M+6、M+12 和 M+18),其中 11 种被鉴定,7 种被推测鉴定,42 种在厌氧和有氧条件下未鉴定。然而,在有氧条件下标记代谢物明显高于厌氧条件。此外,检测到的代谢物和酶活性表明,在 JA2 菌株中,存在多种 l-苯丙氨酸代谢途径,主要是 Ehrlich、homogentisate 依赖性黑色素、苯并途径,在厌氧和有氧条件下均可操作。有趣的是,该研究表明 JA2 菌株中存在 l-苯丙氨酸依赖性和非依赖性苯并生物合成途径,以及在厌氧和有氧条件下 l-苯丙氨酸向 Ehrlich 和苯并途径的不同通量。此外,未鉴定的标记代谢物强烈表明 JA2 菌株中存在未知的苯丙氨酸代谢途径。总的来说,该研究揭示了 JA2 菌株中 l-苯丙氨酸的代谢多样性,并展示了稳定同位素辅助代谢组学在揭示隐藏代谢组方面的潜力。