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基于层流的微流控系统用于分子相互作用分析 - 第 2 部分:数据提取、处理和分析。

Laminar flow-based microfluidic systems for molecular interaction analysis-Part 2: Data extraction, processing and analysis.

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;682:429-464. doi: 10.1016/bs.mie.2022.12.005. Epub 2023 Jan 30.

Abstract

The rate at which fluorescently-labeled biomolecules, that are flowing at a constant speed in a microfluidic channel, diffuse into an adjacent buffer stream can be used to calculate the diffusion coefficient of the molecule, which then gives a measure of its size. Experimentally, determining the rate of diffusion involves capturing concentration gradients in fluorescence microscopy images at different distances along the length of the microfluidic channel, where distance corresponds to residence time, based on the flow velocity. The preceding chapter in this journal covered the development of the experimental setup, including information about the microscope camera detection systems used to acquire fluorescence microscopy data. In order to calculate diffusion coefficients from fluorescence microscopy images, intensity data are extracted from the images and then appropriate methods of processing and analyzing the data, including the mathematical models used for fitting, are applied to the extracted data. This chapter begins with a brief overview of digital imaging and analysis principles, before introducing custom software for extracting the intensity data from the fluorescence microscopy images. Subsequently, methods and explanations for performing the necessary corrections and appropriate scaling of the data are provided. Finally, the mathematics of one-dimensional molecular diffusion is described, and analytical approaches to obtaining the diffusion coefficient from the fluorescence intensity profiles are discussed and compared.

摘要

荧光标记的生物分子以恒定速度在微流控通道中流动时,其扩散到相邻缓冲流中的速率可用于计算分子的扩散系数,从而得出其尺寸的度量。在实验中,确定扩散速率涉及在沿着微流控通道的不同长度位置捕获荧光显微镜图像中的浓度梯度,其中距离对应于基于流速的停留时间。本期刊物的前一章涵盖了实验装置的开发,包括用于获取荧光显微镜数据的显微镜相机检测系统的信息。为了从荧光显微镜图像中计算扩散系数,从图像中提取强度数据,然后将适当的数据处理和分析方法(包括用于拟合的数学模型)应用于提取的数据。本章首先简要介绍数字成像和分析原理,然后介绍用于从荧光显微镜图像中提取强度数据的定制软件。随后,提供了对数据进行必要校正和适当缩放的方法和说明。最后,描述了一维分子扩散的数学原理,并讨论和比较了从荧光强度分布中获得扩散系数的分析方法。

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