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A novel method for the continuous separation of microorganisms based on electrical properties

机译:一种基于电性质连续分离微生物的新方法

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摘要

Increased throughput in the techniques used to engineer new metabolic pathways in unicellular organisms demands similarly high throughput tools for measuring the effects of these pathways on phenotype. For example, the metabolic engineer is often faced with the challenge of selecting the one genomic perturbation that produces a desired result out of tens of thousands of possibilities. This thesis proposes a separation method - iso-dielectric separation, or IDS - which separates microorganisms continuously based on their dielectric properties. This technology would enable high throughput screening of cells based upon electrically distinguishable phenotypes. Iso-dielectric separation uses dielectrophoresis (DEP) and media with spatially varying conductivity to separate cells based upon their effective conductivity. Our target application is the separation of Escherichia coli based upon the amount of the intracellular polymer poly(hydroxybutyrate) that each cell contains. This thesis discusses the modeling, design, fabrication, and testing of an IDS device.
机译:用于在单细胞生物中工程化新的代谢途径的技术中增加的通量需要类似的高通量工具,以测量这些途径对表型的影响。例如,代谢工程师经常面临从数以万计的可能性中选择一种产生期望结果的基因组扰动的挑战。本文提出了一种分离方法-等电介质分离或IDS-根据微生物的介电特性连续分离微生物。该技术将能够基于电可区分的表型进行细胞的高通量筛选。等电介质分离使用介电电泳(DEP)和电导率在空间上变化的介质根据其有效电导率来分离细胞。我们的目标应用是根据每个细胞包含的细胞内聚合物聚羟基丁酸酯的量分离大肠杆菌。本文讨论了IDS设备的建模,设计,制造和测试。

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