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Arsenate-Induced Changes in Bacterial Metabolite and Lipid Pools during Phosphate Stress

机译:磷酸盐胁迫期间砷酸诱导的细菌代谢物和脂质池的变化

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Agrobacterium tumefaciens GW4 is a heterotrophic arsenite-oxidizing bacterium with a high resistance to arsenic toxicity. It is now a model organism for studying the processes of arsenic detoxification and utilization. Previously, we demonstrated that under low-phosphate conditions, arsenate [As(V)] could enhance bacterial growth and be incorporated into biomolecules, including lipids. While the basic microbial As(V) resistance mechanisms have been characterized, global metabolic responses under low phosphate remain largely unknown. In the present work, the impacts of As(V) and low phosphate on intracellular metabolite and lipid profiles of GW4 were quantified using liquid chromatography-mass spectroscopy (LC-MS) in combination with transcriptional assays and the analysis of intracellular ATP and NADH levels. Metabolite profiling revealed that oxidative stress response pathways were altered and suggested an increase in DNA repair. Changes in metabolite levels in the tricarboxylic acid (TCA) cycle along with increased ATP are consistent with As(V)-enhanced growth of A. tumefaciens GW4. Lipidomics analysis revealed that most glycerophospholipids decreased in abundance when As(V) was available. However, several glycerolipid classes increased, an outcome that is consistent with maximizing growth via a phosphate-sparing phenotype. Differentially regulated lipids included phosphotidylcholine and lysophospholipids, which have not been previously reported in A. tumefaciens . The metabolites and lipids identified in this study deepen our understanding of the interplay between phosphate and arsenate on chemical and metabolic levels.IMPORTANCE Arsenic is widespread in the environment and is one of the most ubiquitous environmental pollutants. Parodoxically, the growth of certain bacteria is enhanced by arsenic when phosphate is limited. Arsenate and phosphate are chemically similar, and this behavior is believed to represent a phosphate-sparing phenotype in which arsenate is used in place of phosphate in certain biomolecules. The research presented here uses a global approach to track metabolic changes in an environmentally relevant bacterium during exposure to arsenate when phosphate is low. Our findings are relevant for understanding the environmental fate of arsenic as well as how human-associated microbiomes respond to this common toxin.
机译:农杆菌GW4是一种异养的砷酸盐氧化细菌,具有高抗性砷的毒性。现在是研究砷排毒和利用过程的模型生物体。以前,我们证明,在低磷酸盐条件下,砷酸盐[AS(v)]可以增强细菌生长并将其掺入生物分子中,包括脂质。虽然已经表征了基本的微生物作为(V)抗性机制,但低磷酸盐下的全球代谢反应仍然很大程度上是未知的。在本作本作中,使用液相色谱 - 质谱(LC-MS)与转录测定和细胞内ATP和NADH水平的分析,定量用液相色谱 - 质谱(LC-MS)对GW4对GW4细胞内代谢物和脂质谱的影响。 。代谢物分析表明,改变了氧化应激响应途径,并提出了DNA修复的增加。三羧酸(TCA)循环中的代谢物水平随着ATP的增加,ATP的变化与A.Tumefaciens GW4的鉴定生长一致。脂质病分析显示,当(v)可获得时,大多数甘油磷脂在丰度下降。然而,几种甘油脂肪类别增加,其结果一致,其与通过磷酸盐制剂表型最大化生长。差异调节的脂质包括磷脂基胆碱和溶血磷脂,其尚未在A.甘露糖中报道。本研究中确定的代谢物和脂质深化了我们对化学和代谢水平对化学和代谢水平之间的相互作用的理解。传染砷在环境中是普遍的,并且是普遍无处不在的环境污染物之一。致致毒性,当磷酸盐有限时,砷通过砷增强了某些细菌的生长。砷酸盐和磷酸盐在化学上类似,并且据信这种行为代表了一种磷酸盐制备表型,其中使用砷化物代替某些生物分子的磷酸盐。这里提出的研究使用全局方法来在磷酸盐较低时在暴露于砷酸盐期间跟踪对环境相关细菌的代谢变化。我们的研究结果与理解砷的环境命运以及人类相关的微生物酶如何应对这种常见的毒素。

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