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基于层流的用于分子相互作用分析的微流控系统第 1 部分:芯片开发、系统操作和测量设置。

Laminar flow-based microfluidic systems for molecular interaction analysis-Part 1: Chip development, system operation and measurement setup.

机构信息

Biomolecular Interaction Centre, University of Canterbury, Christchurch, New Zealand; School of Biological Sciences, University of Canterbury, Christchurch, New Zealand.

Biomolecular Interaction Centre, University of Canterbury, Christchurch, New Zealand; School of Biological Sciences, University of Canterbury, Christchurch, New Zealand; Department of Electrical & Computer Engineering, University of Canterbury, Christchurch, New Zealand; The MacDiarmid Institute for Advanced Materials and Nanotechnology, Wellington, New Zealand.

出版信息

Methods Enzymol. 2023;682:53-100. doi: 10.1016/bs.mie.2022.12.001. Epub 2023 Jan 24.

Abstract

The recent advent of laminar flow-based microfluidic systems for molecular interaction analysis has enabled transformative new profiling of proteins in regards to their structure, disordering, complex formation and interactions in general. Based on the diffusive transport of molecules perpendicular to the direction of laminar flow in a microfluidic channel, systems of this type promise continuous-flow, high-throughput screening of complex, multi-molecule interactions, while remaining tolerant to heterogeneous mixtures. Using common microfluidic device processing, the technology provides unique opportunities, as well as device design and experimental challenges, for integrative sample handling approaches that can investigate biomolecular interaction events in complex samples with readily available laboratory equipment. In this first chapter of a two-part series, we introduce system design and experimental setup requirements for a typical laminar flow-based microfluidic system for molecular interaction analysis in the form of what we call the 'LaMInA system' (Laminar flow-based Molecular Interaction Analysis system). We provide microfluidic device development advice on choice of device material, device design, including impact of channel geometry on the signal acquisition, and on design limitations and possible post-fabrication treatments to redress these. Finally. we cover aspects of fluidic actuation, such as selecting, measuring and controlling the flow rate appropriately, and provide a guide to possible fluorescent labels for proteins, as well as options for the fluorescence detection hardware, all in the context of assisting the reader in developing their own laminar flow-based experimental setup for biomolecular interaction analysis.

摘要

最近出现的基于层流的微流控系统,用于分子相互作用分析,使我们能够对蛋白质的结构、无序、复合物形成以及一般相互作用进行变革性的新分析。基于分子在微流控通道中垂直于层流方向的扩散输运,这种类型的系统有望实现复杂多分子相互作用的连续流高通量筛选,同时对异质混合物具有耐受性。通过使用常见的微流控器件加工技术,该技术为集成样品处理方法提供了独特的机会和器件设计及实验挑战,可以使用现成的实验室设备在复杂样品中研究生物分子相互作用事件。在这篇由两部分组成的系列文章的第一部分中,我们以所谓的“LaMInA 系统”(基于层流的分子相互作用分析系统)的形式,介绍了用于分子相互作用分析的典型基于层流的微流控系统的系统设计和实验设置要求。我们就器件材料的选择、器件设计(包括通道几何形状对信号采集的影响)以及设计限制和可能的后制造处理提供了微流控器件开发方面的建议,以纠正这些问题。最后,我们介绍了流体致动方面的内容,例如适当选择、测量和控制流速,并为蛋白质的荧光标记以及荧光检测硬件的选择提供了指南,所有这些都是为了帮助读者开发自己的用于生物分子相互作用分析的基于层流的实验设置。

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