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用于获取薄膜实时动力学和结构信息的表面敏感无标记方法的数据评估:带相关软件包的实用综述。

Data evaluation for surface-sensitive label-free methods to obtain real-time kinetic and structural information of thin films: A practical review with related software packages.

机构信息

Nanobiosensorics Laboratory, Institute of Technical Physics and Materials Science, Centre for Energy Research, 29-33 Konkoly-Thege Miklós út, H-1121 Budapest, Hungary.

Nanobiosensorics Laboratory, Institute of Technical Physics and Materials Science, Centre for Energy Research, 29-33 Konkoly-Thege Miklós út, H-1121 Budapest, Hungary.

出版信息

Adv Colloid Interface Sci. 2021 Aug;294:102431. doi: 10.1016/j.cis.2021.102431. Epub 2021 Apr 27.

Abstract

Interfacial layers are important in a wide range of applications in biomedicine, biosensing, analytical chemistry and the maritime industries. Given the growing number of applications, analysis of such layers and understanding their behavior is becoming crucial. Label-free surface sensitive methods are excellent for monitoring the formation kinetics, structure and its evolution of thin layers, even at the nanoscale. In this paper, we review existing and commercially available label-free techniques and demonstrate how the experimentally obtained data can be utilized to extract kinetic and structural information during and after formation, and any subsequent adsorption/desorption processes. We outline techniques, some traditional and some novel, based on the principles of optical and mechanical transduction. Our special focus is the current possibilities of combining label-free methods, which is a powerful approach to extend the range of detected and deduced parameters. We summarize the most important theoretical considerations for obtaining reliable information from measurements taking place in liquid environments and, hence, with layers in a hydrated state. A thorough treamtmaent of the various kinetic and structural quantities obtained from evaluation of the raw label-free data are provided. Such quantities include layer thickness, refractive index, optical anisotropy (and molecular orientation derived therefrom), degree of hydration, viscoelasticity, as well as association and dissociation rate constants and occupied area of subsequently adsorbed species. To demonstrate the effect of variations in model conditions on the observed data, simulations of kinetic curves at various model settings are also included. Based on our own extensive experience with optical waveguide lightmode spectroscopy (OWLS) and the quartz crystal microbalance (QCM), we have developed dedicated software packages for data analysis, which are made available to the scientific community alongside this paper.

摘要

界面层在生物医药、生物传感、分析化学和海洋工业等广泛的应用中非常重要。鉴于应用的不断增加,对这些层的分析和理解其行为变得至关重要。无标记表面敏感方法非常适合监测薄膜的形成动力学、结构及其演变,即使在纳米尺度上也是如此。在本文中,我们回顾了现有的和商业上可用的无标记技术,并展示了如何利用实验获得的数据来提取形成过程中和形成后以及任何随后的吸附/解吸过程中的动力学和结构信息。我们根据光和机械转换的原理概述了一些传统的和新颖的技术。我们特别关注无标记方法的当前可能性,这是一种扩展检测和推断参数范围的强大方法。我们总结了从在液体环境中进行的测量中获取可靠信息的最重要的理论考虑因素,因此,与处于水合状态的层有关。从对无标记原始数据的评估中获得的各种动力学和结构量进行了彻底的处理。这些量包括层厚度、折射率、光学各向异性(及其由此衍生的分子取向)、水合度、粘弹性以及随后吸附物质的缔合和解离速率常数和占据面积。为了演示模型条件变化对观察到的数据的影响,还包括在各种模型设置下的动力学曲线的模拟。基于我们在光波导光模式光谱(OWLS)和石英晶体微天平(QCM)方面的丰富经验,我们已经开发了专用的数据分析软件包,并与本文一起提供给科学界。

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