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Rapid culture-based detection of living mycobacteria using microchannel electrical impedance spectroscopy (m-EIS)

机译:使用微通道电阻抗光谱(m-EIS)基于培养的活分支杆菌快速检测

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Multiple techniques exist for detecting Mycobacteria, each having its own advantages and drawbacks. Among them, automated culture-based systems like the BACTEC-MGIT? are popular because they are inexpensive, reliable and highly accurate. However, they have a relatively long “time-to-detection” (TTD). Hence, a method that retains the reliability and low-cost of the MGIT system, while reducing TTD would be highly desirable. Living bacterial cells possess a membrane potential, on account of which they store charge when subjected to an AC-field. This charge storage (bulk capacitance) can be estimated using impedance measurements at multiple frequencies. An increase in the number of living cells during culture is reflected in an increase in bulk capacitance, and this forms the basis of our detection. M. bovis BCG and M. smegmatis suspensions with differing initial loads are cultured in MGIT media supplemented with OADC and Middlebrook 7H9 media respectively, electrical “scans” taken at regular intervals and the bulk capacitance estimated from the scans. Bulk capacitance estimates at later time-points are statistically compared to the suspension’s baseline value. A statistically significant increase is assumed to indicate the presence of proliferating mycobacteria. Our TTDs were 60 and 36?h for M. bovis BCG and 20 and 9?h for M. smegmatis with initial loads of 1000?CFU/ml and 100,000?CFU/ml respectively. The corresponding TTDs for the commercial BACTEC MGIT 960 system were 131 and 84.6?h for M. bovis BCG and 41.7 and 12?h for M smegmatis, respectively. Our culture-based detection method using multi-frequency impedance measurements is capable of detecting mycobacteria faster than current commercial systems.
机译:存在多种检测分枝杆菌的技术,每种技术都有其自身的优点和缺点。其中有BACTEC-MGIT等基于文化的自动化系统吗?之所以流行,是因为它们价格便宜,可靠且高度准确。但是,它们具有相对较长的“检测时间”(TTD)。因此,非常需要一种在降低TTD的同时保持MGIT系统的可靠性和低成本的方法。活细菌细胞具有膜电位,因此,在交流电场作用下它们会存储电荷。可以使用多个频率下的阻抗测量来估算此电荷存储(大容量电容)。培养过程中活细胞数量的增加反映在体积电容的增加上,这构成了我们检测的基础。分别在添加了OADC和Middlebrook 7H9培养基的MGIT培养基中培养牛初乳杆菌BCG和耻垢分枝杆菌悬浮液,并定期进行电“扫描”,并根据扫描结果估算大容量。在以后的时间点,将大容量电容估算值与悬架的基线值进行统计比较。假设统计学上显着的增加表明存在分枝杆菌增生。对于牛分枝杆菌BCG,我们的TTD为60?36?h,对于耻垢分枝杆菌,我们的TTD为20?9?h,初始负荷分别为1000?CFU / ml和100,000?CFU / ml。商用BACTEC MGIT 960系统的相应TTD对于牛分枝杆菌BCG分别为131和84.6?h,对于耻垢分枝杆菌分别为41.7和12?h。我们基于文化的检测方法使用多频阻抗测量,能够比当前的商用系统更快地检测分枝杆菌。

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