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首页> 外文期刊>Applied Microbiology >Strain-Specific Metabolic Requirements Revealed by a Defined Minimal Medium for Systems Analyses of Staphylococcus aureus
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Strain-Specific Metabolic Requirements Revealed by a Defined Minimal Medium for Systems Analyses of Staphylococcus aureus

机译:通过金黄色葡萄球菌系统分析定义的最小培养基揭示特定菌株的代谢要求

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Staphylococcus aureus is a Gram-positive pathogenic bacterium that colonizes an estimated one-third of the human population and can cause a wide spectrum of disease, ranging from superficial skin infections to life-threatening sepsis. The adaptive mechanisms that contribute to the success of this pathogen remain obscure partially due to a lack of knowledge of its metabolic requirements. Systems biology approaches can be extremely useful in predicting and interpreting metabolic phenotypes; however, such approaches rely on a chemically defined minimal medium as a basis to investigate the requirements of the cell. In this study, a chemically defined minimal medium formulation, termed synthetic minimal medium (SMM), was investigated and validated to support growth of three S. aureus strains: LAC and TCH1516 (USA300 lineage), as well as D592 (USA100 lineage). The formulated SMM was used in an adaptive laboratory evolution experiment to probe the various mutational trajectories of all three strains leading to optimized growth capabilities. The evolved strains were phenotypically characterized for their growth rate and antimicrobial susceptibility. Strains were also resequenced to examine the genetic basis for observed changes in phenotype and to design follow-up metabolite supplementation assays. Our results reveal evolutionary trajectories that arose from strain-specific metabolic requirements. SMM and the evolved strains can also serve as important tools to study antibiotic resistance phenotypes of S. aureus.IMPORTANCE As researchers try to understand and combat the development of antibiotic resistance in pathogens, there is a growing need to thoroughly understand the physiology and metabolism of the microbes. Staphylococcus aureus is a threatening pathogen with increased antibiotic resistance and well-studied virulence mechanisms. However, the adaptive mechanisms used by this pathogen to survive environmental stresses remain unclear, mostly due to the lack of information about its metabolic requirements. Defining the minimal metabolic requirements for S. aureus growth is a first step toward unraveling the mechanisms by which it adapts to metabolic stresses. Here, we present the development of a chemically defined minimal medium supporting growth of three S. aureus strains, and we reveal key genetic mutations contributing to improved growth in minimal medium.
机译:金黄色葡萄球菌是革兰氏阳性致病性细菌,定居在三分之一的人口中,可引起多种疾病,从表皮感染到危及生命的败血症。导致这种病原体成功的适应机制在某种程度上仍然是不清楚的,这是由于缺乏对其代谢要求的了解。系统生物学方法对于预测和解释代谢表型可能非常有用。然而,这种方法依赖于化学上定义的最小培养基作为研究细胞需求的基础。在这项研究中,对化学定义的基本培养基配方(称为合成基本培养基(SMM))进行了研究和验证,以支持三种金黄色葡萄球菌菌株:LAC和TCH1516(USA300谱系)以及D592(USA100谱系)的生长。所配制的SMM用于适应性实验室进化实验,以探查所有导致优化生长能力的所有三种菌株的各种突变轨迹。从表型上表征了进化菌株的生长速率和抗菌敏感性。还对菌株进行了重新测序,以检查观察到的表型变化的遗传基础,并设计后续代谢物补充检测方法。我们的结果揭示了由菌株特异性代谢需求引起的进化轨迹。 SMM和进化后的菌株也可以作为研究金黄色葡萄球菌抗生素抗性表型的重要工具。随着研究人员试图了解和对抗病原体中抗生素抗性的发展,对彻底了解其生理和代谢的需求日益增长。微生物。金黄色葡萄球菌是具有威胁性的病原体,具有增强的抗生素抗性和充分研究的毒力机制。然而,这种病原体用来抵抗环境压力的适应机制仍然不清楚,这主要是由于缺乏有关其代谢需求的信息。定义金黄色葡萄球菌生长的最低代谢要求是阐明其适应代谢压力的机制的第一步。在这里,我们介绍了化学定义的基本培养基的开发,该培养基支持三种金黄色葡萄球菌菌株的生长,并且我们揭示了有助于改善基本培养基中生长的关键基因突变。

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