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On-chip MIC by Combining Concentration Gradient Generator and Flanged Chamber Arrays

机译:结合浓度梯度发生器和法兰腔阵列的片上MIC

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摘要

Minimum inhibition concentration (MIC) of antibiotic is an effective value to ascertain the agent and minimum dosage of inhibiting bacterial growth. However, current techniques to determine MIC are labor intensive and time-consuming, and require skilled operator and high initial concentration of bacteria. To simplify the operation and reduce the time of inhibition test, we developed a microfluidic system, containing a concentration generator and sub-micro-liter chambers, for rapid bacterial growth and inhibition test. To improve the mixing effect, a micropillar array in honeycomb-structure channels is designed, so the steady concentration gradient of amoxicillin can be generated. The flanged chambers are used to culture bacteria under the condition of continuous flow and the medium of chambers is refreshed constantly, which could supply the sufficient nutrient for bacteria growth and take away the metabolite. Based on the microfluidic platform, the bacterial growth with antibiotic inhibition on chip can be quantitatively measured and MIC can be obtained within six hours using low initial concentration of bacteria. Overall, this microfluidic platform has the potential to provide rapidness and effectiveness to screen bacteria and determine MIC of corresponding antibiotics in clinical therapies.
机译:抗生素的最小抑制浓度(MIC)是确定抑制细菌生长的药物和最小剂量的有效值。但是,当前确定MIC的技术是劳动密集型和费时的,并且需要熟练的操作员和较高的细菌初始浓度。为了简化操作并减少抑制测试的时间,我们开发了一种微流体系统,该系统包含一个浓度发生器和亚微升室,用于快速细菌生长和抑制测试。为了提高混合效果,在蜂窝结构通道中设计了微柱阵列,因此可以生成稳定的阿莫西林浓度梯度。法兰式腔室用于在连续流动的条件下培养细菌,腔室的培养基不断更新,可以为细菌生长提供足够的营养并带走代谢产物。基于微流控平台,可以定量测量具有抗生素抑制作用的细菌生长情况,并且可以使用较低的初始细菌浓度在六小时内获得MIC。总体而言,该微流体平台具有提供快速性和有效性来筛选细菌并确定临床治疗中相应抗生素的MIC的潜力。

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