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System for real-time monitoring of mutation-in-progress

机译:进行中的突变实时监测系统

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Aims: There has been an increasing number of pathogens becoming resistant to multiple classes of antibiotics. The study on how mutation emerges is therefore crucial to promote further understanding in this area. Conventional methods for such studies involve the monitoring of growth by standard plate count and biomolecular sequencing. This is however tedious and not cost effective. The aim of this paper is thus to introduce a novel system that enables real-time monitoring of bacterial 'mutation-in-progress'. Methods and Results: This system provides real-time data, thus enabling confirmatory and further work to be performed at the important points when mutation is initiated. The system integrates spectroscopic techniques as the detection system and various supporting systems, such as a nutrient replenishing system, a pH control system and a waste system to allow for extended monitoring. In this paper, the feasibility of monitoring the emergence of ciprofloxacin resistance in Staphylococcus aureus was demonstrated as an initial example. The integrated system was found to require significantly less material resource and manpower compared with conventional techniques. Conclusions: The novel system to monitor bacterial mutation-in-progress is presented. The work reported herein demonstrates such a system to be effective and efficient in performing real-time monitoring of mutation-in-progress, especially in extended time frames for mutation into the weeks and months. Significance and Impact of the Study: With the successful optimization of this system, researchers can learn about the dynamics of antibiotic resistance and further understand how the mutation of bacteria occurs.
机译:目的:越来越多的病原体对多种抗生素产生抗药性。因此,关于突变如何产生的研究对于促进对该领域的进一步理解至关重要。用于此类研究的常规方法包括通过标准板数和生物分子测序来监测生长。然而,这是单调乏味且不符合成本效益的。因此,本文的目的是介绍一种新型系统,该系统能够实时监测细菌的“正在进行的突变”。方法和结果:该系统提供实时数据,因此可以在突变开始时的重要时刻进行确认和进一步的工作。该系统集成了光谱技术作为检测系统和各种支持系统,例如营养补充系统,pH控制系统和废物系统,可以进行扩展的监控。本文以监测金黄色葡萄球菌对环丙沙星耐药性的出现的可行性为例。与传统技术相比,该集成系统需要的材料资源和人力大大减少。结论:提出了监测细菌进行中突变的新系统。本文报道的工作证明了这样的系统可以有效且高效地进行正在进行的突变的实时监测,尤其是在延长的时间范围内将突变转化为数周和数月。研究的意义和影响:通过成功优化该系统,研究人员可以了解抗生素耐药性的动态,并进一步了解细菌突变的发生方式。

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