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A Rapid and High Throughput MIC Determination Method to Screen Uranium Resistant Microorganisms

机译:筛选铀耐微生物的快速和高通量MIC测定方法

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摘要

The assessment of minimum inhibitory concentration (MIC) is a conventional technique used for the screening of microbial resistance against antibiotics, biocides, and contaminants such as heavy metals. However, as part of our ongoing work, we have observed biases associated with using traditional liquid MIC method to screen microbial heavy metal resistance, including both bacterial and fungal strains. Specifically, the addition of uranium into synthetic media causes immediate precipitation prior to the initiation of microbial growth, thus hampering the optical density measurements, and the obtained MIC values are thus flawed and inaccurate. To address this discrepancy, we report the optimization and development of a serial-dilution-based MIC method conducted on solid growth media supplemented with uranium, which is more accurate, relative to the testing of MICs performed in liquid cultures. Notably, we report on the efficacy of this method to screen not only bacteria that are resistant to uranium but also demonstrate the successful application to yeast and fungal isolates, for their ability to resist uranium, is more accurate and sensitive relative to the liquid method. We believe that this newly developed method to screen heavy metal resistance, such as uranium, is far superior to the existing liquid MIC method and propose replacing the liquid assay with the solid plate MIC reported herein.
机译:最小抑制浓度(MIC)的评估是用于筛选针对抗生素,杀生物剂和污染物如重金属的微生物抗性的常规技术。然而,作为我们正在进行的工作的一部分,我们已经观察到与使用传统液体MIC方法相关的偏差,以筛选微生物重金属抗性,包括细菌和真菌菌株。具体地,将铀添加到合成介质中引起微生物生长前立即沉淀,从而阻碍光学密度测量,因此获得的MIC值缺陷并不准确。为了解决这种差异,我们报告了在补充有铀的固体生长培养基上进行的串联稀释的MIC方法的优化和开发,相对于在液体培养物中进行的MIC测试更准确。值得注意的是,我们报告该方法的疗效不仅筛选对铀耐药性而且证明了酵母和真菌分离物的成功应用,因为它们相对于液体方法更准确和敏感。我们认为,这种新开发的方法筛选铀的重金属抗性,如铀,远远优于现有的液体MIC方法,并提出用本文报道的固体板MIC取代液体测定。

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