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iTRAQ 定量蛋白质组学揭示了 Rubrivivax benzoatilyticus JA2 葡萄糖生长细胞的代谢和分子反应的见解。

iTRAQ-based quantitative proteomics reveals insights into metabolic and molecular responses of glucose-grown cells of Rubrivivax benzoatilyticus JA2.

机构信息

Department of Plant Sciences, P.O. Central University, University of Hyderabad, Hyderabad 500046, India.

Bacterial Discovery Laboratory, Centre for Environment, IST, JNT University Hyderabad, Kukatpally, Hyderabad 500085, India.

出版信息

J Proteomics. 2019 Mar 1;194:49-59. doi: 10.1016/j.jprot.2018.12.027. Epub 2018 Dec 28.

Abstract

Anoxygenic photosynthetic bacteria thrive under diverse habitats utilising an extended range of inorganic/organic compounds under different growth modes. Although they display incredible metabolic flexibility, their responses and adaptations to changing carbon regimes is largely unexplored. In the present study, we employed iTRAQ-based global proteomic profiling and physiological studies to uncover the adaptive strategies of a phototrophic bacterium, Rubrivivax benzoatilyticus JA2 to glucose. Strain JA2 displayed altered growth rates, reduced cell size and progressive loss of pigmentation when grown on glucose compared to malate under photoheterotrophic condition. A ten-fold increase in the saturated to unsaturated fatty acid ratio of glucose-grown cells indicates a possible membrane adaptation. Proteomic profiling revealed extensive metabolic remodelling in the glucose-grown cells wherein signal-transduction, selective-transcription, DNA-repair, transport and protein quality control processes were up-regulated to cope with the changing milieu. Proteins involved in DNA replication, translation, electron-transport, photosynthetic machinery were down-regulated possibly to conserve the energy. Glycolysis/gluconeogenesis, TCA cycle and pigment biosynthesis were also down-regulated. The cell has activated alternative energy metabolic pathways viz., fatty acid β-oxidation, glyoxylate, acetate-switch and Entner-Doudoroff pathways. Overall, the present study deciphered the molecular/metabolic events associated with glucose-grown cells of strain JA2 and also unraveled how a carbon source modulates the metabolic phenotypes. SIGNIFICANCE: Anoxygenic photosynthetic bacteria (APB) exhibit incredible metabolic flexibility leading to diverse phenotypes. They thrive under diverse habitat using an array of inorganic/organic compounds as carbon sources, yet their metabolic adaptation to varying carbon regime is mostly unexplored. Present study uncovered the proteomic insights of the cellular responses of strain JA2 to changing carbon sources viz. malate and glucose under photoheterotrophic conditions. Our study suggests that carbon source can also determine the metabolic fate of the cells and reshape the energy dynamics of APB. Here, for the first time study highlighted the plausible carbon source (glucose) mediated regulation of photosynthesis in APB. The study sheds light on the plausible cellular events and adaptive metabolic strategies employed by strain JA2 in presence of non-preferred carbon source. It also revealed new insights into the metabolic plasticity of APB to the changing milieu.

摘要

贫养型光合细菌在不同生境中茁壮成长,利用各种无机/有机化合物,在不同的生长模式下生存。尽管它们表现出令人难以置信的代谢灵活性,但它们对不断变化的碳环境的响应和适应在很大程度上仍未被探索。在本研究中,我们采用 iTRAQ 基于的全局蛋白质组学分析和生理学研究,揭示了一种光养细菌 Rubrivivax benzoatilyticus JA2 对葡萄糖的适应策略。与在光照异养条件下以富马酸相比,JA2 菌株在以葡萄糖为碳源时生长速度变慢,细胞变小,色素逐渐丧失。葡萄糖生长细胞中饱和脂肪酸与不饱和脂肪酸的比例增加了十倍,表明可能存在膜适应。蛋白质组学分析显示,在葡萄糖生长的细胞中发生了广泛的代谢重塑,其中信号转导、选择转录、DNA 修复、运输和蛋白质质量控制过程被上调以应对不断变化的环境。涉及 DNA 复制、翻译、电子传递、光合作用机制的蛋白质可能被下调以节省能量。糖酵解/糖异生、三羧酸循环和色素生物合成也被下调。该细胞已经激活了替代的能量代谢途径,例如脂肪酸β-氧化、乙醛酸、乙酸盐转换和 Entner-Doudoroff 途径。总的来说,本研究揭示了与 JA2 菌株葡萄糖生长细胞相关的分子/代谢事件,并阐明了碳源如何调节代谢表型。

意义

贫养型光合细菌(APB)表现出令人难以置信的代谢灵活性,导致了多种表型。它们在不同的生境中利用一系列无机/有机化合物作为碳源茁壮成长,但它们对不断变化的碳环境的代谢适应在很大程度上仍未被探索。本研究揭示了 JA2 菌株在光照异养条件下对不同碳源(富马酸和葡萄糖)的细胞响应的蛋白质组学见解。我们的研究表明,碳源也可以决定细胞的代谢命运,并重塑 APB 的能量动态。在这里,首次研究强调了可能的碳源(葡萄糖)介导的 APB 光合作用的调节。该研究揭示了 JA2 菌株在存在非首选碳源时可能发生的细胞事件和适应性代谢策略。它还揭示了 APB 对不断变化的环境的代谢可塑性的新见解。

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