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Rapid antibiotic susceptibility testing by tracking single cell growth in a microfluidic agarose channel system

机译:通过跟踪微流琼脂糖通道系统中的单细胞生长,快速进行抗生素敏感性测试

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Sepsis is one of the major causes of death in the US, necessitating rapid treatment with proper antibiotics. Conventional systems for antibiotic susceptibility testing (AST) take far too long (16-24 h) for the timely treatment of sepsis. This is because they rely on measuring optical density, which relates to bacterial growth, to determine the minimal inhibitory concentrations (MICs) of relevant antibiotics. Thus, there is a desperate need for more improved and rapid AST (RAST) systems. The RAST system can also reduce the growing number of clinical problems that are associated with antibiotic resistance caused by methicillin-resistant Staphylococcus aureus, vancomycin-resistant Staphylococcus aureus, and vancomycin-resistant enterococci. In this study, we demonstrate a microfluidic agarose channel (MAC) system that reduces the AST assay time for determining MICs by single bacterial time lapse imaging. The MAC system immobilizes bacteria by using agarose in a microfluidic culture chamber so that single cell growth can be tracked by microscopy. Time lapse images of single bacterial cells under different antibiotic culture conditions were analyzed by image processing to determine MICs. Three standard bacteria from the Clinical and Laboratory Standard Institute (CLSI) were tested with several kinds of antibiotics. MIC values that were well matched with those of the CLSI were obtained within only 3-4 h. We expect that the MAC system can offer rapid diagnosis of sepsis and thus, more efficient and proper medication in the clinical setting.
机译:脓毒症是美国的主要死亡原因之一,因此必须使用适当的抗生素进行快速治疗。传统的抗生素药敏测试系统(AST)花费的时间太长(16-24小时),无法及时治疗败血症。这是因为它们依靠测量与细菌生长有关的光密度来确定相关抗生素的最小抑菌浓度(MIC)。因此,迫切需要更改进和快速的AST(RAST)系统。 RAST系统还可以减少与由耐甲氧西林的金黄色葡萄球菌,耐万古霉素的金黄色葡萄球菌和耐万古霉素的肠球菌引起的抗生素耐药性相关的临床问题。在这项研究中,我们展示了一种微流琼脂糖通道(MAC)系统,该系统减少了通过单细菌延时成像确定MIC的AST分析时间。 MAC系统通过在微流体培养室中使用琼脂糖将细菌固定化,因此可以通过显微镜跟踪单细胞的生长。通过图像处理分析单个细菌细胞在不同抗生素培养条件下的延时图像,以测定MIC。来自临床和实验室标准协会(CLSI)的三种标准细菌已用几种抗生素进行了测试。仅在3-4小时内即可获得与CLSI的MIC值非常匹配的MIC值。我们期望MAC系统可以对败血症进行快速诊断,从而在临床上提供更有效,更合适的药物。

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