Temporal response of biochemical and biological sensors with bimodal surface adsorption from a finite sample.

IF 1.6 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Microsystem Technologies-Micro-And Nanosystems-Information Storage and Processing Systems Pub Date : 2021-01-01 Epub Date: 2020-10-06 DOI:10.1007/s00542-020-05051-w
Ivana Jokić, Olga Jakšić, Miloš Frantlović, Zoran Jakšić, Koushik Guha, Karumuri Srinivasa Rao
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引用次数: 3

Abstract

The importance of adsorption-based biochemical/biological sensors in biochemistry and biophysics is paramount. Their temporal response gives information about the presence of a biochemical/biological analyte, its concentration and its interactions with the adsorption sites (which may be an integral part of the surface itself or immobilized functionalizing molecules). Mathematical models of the temporal response taking into account as many relevant effects as possible are essential for obtaining reliable information. We present a novel model taking into account the bimodal affinity of a sensing surface (adsorption occurs on two distinct site types), and the adsorption-caused depletion of the analyte from the sample. We perform qualitative and quantitative analysis of the analyte depletion influence on the bimodal adsorption, and of the influence of the sensing surface inhomogeneity on the sensor temporal response, for different analyte concentrations and different fractions of two types of adsorption sites. Since the presented mathematical model deals with the realistic cases of the sensing surface non-uniformity and the finite amount of analyte present in the sensor reaction chamber, it enables improved accuracy in interpreting the measurement data. Our results are general, i.e. valid for any adsorption sensor (microcantilevers, plasmonics) and for arbitrary sensor dimensions.

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有限样品中具有双峰表面吸附的生化和生物传感器的时间响应。
吸附型生化/生物传感器在生物化学和生物物理学中的重要性是至关重要的。它们的时间响应提供了有关生化/生物分析物的存在、浓度及其与吸附位点(可能是表面本身的组成部分或固定化功能化分子)的相互作用的信息。考虑到尽可能多的相关影响的时间反应的数学模型对于获得可靠的信息是必不可少的。我们提出了一个新的模型,考虑到感应表面的双峰亲和力(吸附发生在两个不同的位点类型上),以及吸附引起的样品中分析物的损耗。对于两种类型的吸附位点的不同分析物浓度和不同组分,我们对分析物耗尽对双峰吸附的影响以及传感表面不均匀性对传感器时间响应的影响进行了定性和定量分析。由于所提出的数学模型处理了传感表面不均匀性和传感器反应室中存在的有限数量的分析物的实际情况,因此它能够提高解释测量数据的准确性。我们的结果是一般的,即适用于任何吸附传感器(微悬臂,等离子体)和任意传感器尺寸。
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来源期刊
CiteScore
5.20
自引率
9.50%
发文量
147
审稿时长
3.3 months
期刊介绍: "Microsystem Technologies - Micro- and Nanosystems. Information Storage and Processing Systems" is intended to provide rapid publication of important and timely results on electromechanical, materials science, design, and manufacturing issues of these systems and their components. The MEMS/NEMS (Micro/NanoElectroMechanical Systems) area includes sensor, actuators and other micro/nanosystems, and micromechatronic systems integration. Information storage systems include magnetic recording, optical recording, and other recording devices, e.g., rigid disk, flexible disk, tape and card drives. Processing systems include copiers, printers, scanners and digital cameras. All contributions are of international archival quality. These are refereed by MST editors and their reviewers by rigorous journal standards. The journal covers a wide range of interdisciplinary technical areas. It brings together and cross-links the knowledge, experience, and capabilities of academic and industrial specialists in many fields. Finally, it contributes to the economically and ecologically sound production of reliable, high-performance MEMS and information storage & processing systems.
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