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首页> 外文期刊>Proteomics. Clinical applications >Purine biosynthesis is the bottleneck in trimethoprim‐treated Bacillus subtilis Bacillus subtilis
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Purine biosynthesis is the bottleneck in trimethoprim‐treated Bacillus subtilis Bacillus subtilis

机译:嘌呤生物合成是Trimethoprim治疗的芽孢杆菌枯草芽孢杆菌枯草芽孢杆菌的瓶颈

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Purpose Trimethoprim is a folate biosynthesis inhibitor. Tetrahydrofolates are essential for the transfer of C 1 units in several biochemical pathways including purine, thymine, methionine, and glycine biosynthesis. This study addressed the effects of folate biosynthesis inhibition on bacterial physiology. Experimental design Two complementary proteomic approaches were employed to analyze the response of Bacillus subtilis to trimethoprim. Acute changes in protein synthesis rates were monitored by radioactive pulse labeling of newly synthesized proteins and subsequent 2DE analysis. Changes in protein levels were detected using gel‐free quantitative MS. Results Proteins involved in purine and histidine biosynthesis, the σ B ‐dependent general stress response, and sporulation were upregulated. Most prominently, the PurR‐regulon required for de novo purine biosynthesis was derepressed indicating purine depletion. The general stress response was activated energy dependently and in a subpopulation of treated cultures an early onset of sporulation was observed, most likely triggered by low guanosine triphosphate levels. Supplementation of adenosine triphosphate, adenosine, and guanosine to the medium substantially decreased antibacterial activity, showing that purine depletion becomes the bottleneck in trimethoprim‐treated B. subtilis . Conclusions and clinical relevance The frequently prescribed antibiotic trimethoprim causes purine depletion in B. subtilis , which can be complemented by supplementing purines to the medium.
机译:目的Trimethokim是叶酸生物合成抑制剂。四氢溶胶对于在包括嘌呤,胸腺嘧啶,蛋氨酸和甘氨酸生物合成的几种生化途径中转移C 1单元是必不可少的。本研究解决了叶酸生物合成抑制对细菌生理学的影响。实验设计采用了两种互补蛋白质组学方法来分析枯草芽孢杆菌对三甲基洛的反应。通过新合成的蛋白质的放射性脉冲标记和随后的2DE分析监测蛋白质合成速率的急性变化。使用无凝胶定量MS检测蛋白质水平的变化。结果涉及嘌呤和组氨酸生物合成的蛋白质,σb依赖性一般应力反应和孢子化被上调。最突出的是,De Novo嘌呤生物合成所需的Purr-Secrencon是大规模的表明嘌呤耗尽。一般应力响应依赖性活性,并且在处理过的培养物中,观察到孢子的早期发作,最有可能被低鸟苷三磷酸水平引发。补充腺苷三磷酸,腺苷和鸟苷对培养基的基本上降低的抗菌活性,表明嘌呤耗尽变成了Trimethoprim处理的B.枯草芽孢杆菌中的瓶颈。结论和临床相关性经常规定的抗生素三甲基吡啶导致B.枯草芽孢杆菌的嘌呤耗尽,其可以通过将嘌呤补充到培养基中来互补。

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