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Bilayer lipid membrane (BLM) integration into microfluidic platforms with application toward BLM-based biosensors.

机译:双层脂质膜(BLM)集成到微流体平台中,并应用于基于BLM的生物传感器。

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摘要

Bilayer Lipid Membranes (BLMs) have been widely used as an experimental tool to investigate fundamental cellular membrane physics and ion channel formation and transduction. Traditional BLM experimentation is usually performed in a macro-sized electrophysiology rig, which suffers from several well-known issues. First, BLMs have short lifetimes (typically on the order of tens of minutes to a few hours) and the laborious, irreproducible membrane formation process must be repeatedly applied for long-term testing. Second, stray capacitance inherent to traditional test rigs limits the temporal response leading, for example, to poor resolution in determining fast ion channel translocation events. Lastly, BLM testing is done within a single site format thus limiting throughput and increasing data collection time.; To mitigate the above drawbacks, BLM technology and microfluidic platforms can be integrated to advance the state-of-the-art of BLM-based biosensor technology. Realization of BLM-based microfluidic biosensors can offer significant improvement towards sensor response characteristics (e.g. lower noise floor, increased time response). In addition, microfluidic biosensing chips can be fabricated with multiple BLM test sites that allow for parallel testing thus increasing data collection efficiency. Other benefits that microfluidics offer are: small reagent sensing volumes, disposable packaging, mass manufacturability, device portability for field studies, and lower device cost.; Novel polymer microfluidic platforms capable of both in-situ and ex-situ BLM formation are described in this work. The platforms have been demonstrated for the controlled delivery of trans-membrane proteins to the BLM sites, and monitoring of translocation events through these ion channels using integrated thin film Ag/AgCl electrodes. The detailed design, fabrication, and characterization of various micro-fabricated BLM platforms is presented in this dissertation.
机译:双层脂质膜(BLM)已被广泛用作研究基本细胞膜物理学以及离子通道形成和转导的实验工具。传统的BLM实验通常是在大型电生理装置中进行的,该装置有几个众所周知的问题。首先,BLM的寿命很短(通常在几十分钟到几小时的数量级),并且必须重复使用费力,无法重现的成膜过程来进行长期测试。第二,传统测试设备固有的杂散电容限制了时间响应,例如,在确定快速离子通道易位事件时导致分辨率较差。最后,BLM测试是在单一站点格式下完成的,从而限制了吞吐量并增加了数据收集时间。为了减轻上述缺点,可以集成BLM技术和微流体平台,以推动基于BLM的生物传感器技术的最新发展。基于BLM的微流体生物传感器的实现可以显着改善传感器的响应特性(例如,较低的本底噪声,增加的时间响应)。此外,微流体生物传感芯片可以制造有多个BLM测试站点,从而可以进行并行测试,从而提高了数据收集效率。微流体技术还提供的其他好处包括:较小的试剂感应体积,一次性包装,批量生产性,用于现场研究的设备便携性以及较低的设备成本。这项工作描述了能够在原位和异位BLM形成的新型聚合物微流体平台。已经证明该平台可用于跨膜蛋白向BLM部位的受控传递,并使用集成的薄膜Ag / AgCl电极监控通过这些离子通道的转运事件。本文介绍了各种微型BLM平台的详细设计,制造和特性。

著录项

  • 作者

    Hromada, Louis Paul, Jr.;

  • 作者单位

    University of Maryland, College Park.$bMechanical Engineering.;

  • 授予单位 University of Maryland, College Park.$bMechanical Engineering.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:39:49

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