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Scalable Genome Engineering in Electrowetting on Dielectric Digital Microfluidic Systems.

机译:介电数字微流体系统电润湿中的可扩展基因组工程。

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摘要

Electrowetting-on-dielectric (EWD) digital microfluidics is a droplet-based fluid handling technology capable of radically accelerating the pace of genome engineering research. EWD-based laboratory-on-chip (LoC) platforms demonstrate excellent performance in automating labor-intensive laboratory protocols at ever smaller scales. Until now, there has not been an effective means of gene transfer demonstrated in EWD microfluidic platforms. This thesis describes the theoretical and experimental approaches developed in the demonstration of an EWD-enabled electrotransfer device. Standard microfabrication methods were employed in the integration of electroporation (EP) and EWD device architectures. These devices enabled the droplet-based bulk transformation of E. coli with plasmid and oligo DNA. Peak on-chip transformation efficiencies for the EP/EWD device rivaled that of comparable benchtop protocols. Additionally, ultrasound induced in-droplet microstreaming was developed as a means of improving on-chip electroporation. The advent of electroporation in an EWD platform offers synthetic biologists a reconfigurable, programmable, and scalable fluid handling platform capable of automating next-generation genome engineering methods. This capability will drive the discovery and production of exotic biomaterials by providing the instrumentation necessary for rapidly generating ultra-rich genomic diversity at arbitrary volumetric scales.
机译:电介质上电润湿(EWD)数字微流体技术是一种基于液滴的流体处理技术,能够从根本上加快基因组工程研究的步伐。基于EWD的片上实验室(LoC)平台在规模较小的自动化劳动密集型实验室规程方面展示了卓越的性能。到目前为止,在EWD微流控平台上还没有证明有效的基因转移方法。本文介绍了在具有EWD功能的电转移设备的演示中开发的理论和实验方法。在电穿孔(EP)和EWD设备架构的集成中采用了标准的微细加工方法。这些设备使质粒和寡核苷酸DNA能够基于液滴的大批转化。 EP / EWD设备的峰值片上转换效率可与同类台式协议相媲美。另外,开发了超声诱导的液滴内微流作为改善芯片上电穿孔的手段。 EWD平台中电穿孔技术的出现为合成生物学家提供了一种可重构,可编程和可扩展的流体处理平台,该平台能够实现下一代基因组工程方法的自动化。通过提供在任意体积尺度下快速生成超丰富基因组多样性所必需的仪器,该功能将推动奇异生物材料的发现和生产。

著录项

  • 作者

    Madison, Andrew C.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Electrical engineering.;Mechanics.;Molecular biology.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 298 p.
  • 总页数 298
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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