使用高频电旋转来无干扰地识别细胞中的细胞质变化。

IF 3 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Camila D. M. Campos, Kevin T. Uning, Pawel Barmuta, Tomislav Markovic, Rahul Yadav, Giovanni Mangraviti, Ilja Ocket, Willem Van Roy, Liesbet Lagae, Chengxun Liu
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引用次数: 0

摘要

在本文中,我们展示了在通过电旋转分析细胞时使用50 kHz至5 GHz的频率如何为识别传统设置无法检测到的差异开辟道路。早期的工作通常报道了在20MHz以下工作的电旋转装置,这限制了对与细胞膜相关的特性的响应。因此,这些设备无法解决细胞质中的生理特性。我们使用基于微波的技术将频率操作扩展到5GHz。在高频(从几十兆赫到千兆赫)下,电磁信号通过膜,可以探测细胞质。这使得一些应用成为可能,例如细胞分类和活力分析。此外,与其他非侵入性方法相比,使用传统的微制造技术降低了分析的成本和复杂性。我们通过识别视觉评估无法区分的两种不同的T淋巴细胞群体,证明了这种设置的潜力。我们还评估了钙黄绿素对细胞细胞质特性的影响,并将其作为对照实验,以证明这种方法检测主要发生在细胞质中的变化的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Use of high frequency electrorotation to identify cytoplasmic changes in cells non-disruptively

Use of high frequency electrorotation to identify cytoplasmic changes in cells non-disruptively

In this paper we demonstrate how the use of frequencies ranging from 50 kHz to 5 GHz in the analysis of cells by electrorotation can open the path to the identification of differences not detectable by conventional set-ups. Earlier works usually reported electrorotation devices operating below 20 MHz, limiting the response obtained to properties associated with the cell membrane. Those devices are thus unable to resolve the physiological properties in the cytoplasm. We used microwave-based technology to extend the frequency operation to 5 GHz. At high frequencies (from tens of MHz to GHz), the electromagnetic signal passes through the membrane and allows probing the cytoplasm. This enables several applications, such as cell classification, and viability analysis. Additionally, the use of conventional microfabrication techniques reduces the cost and complexity of analysis, compared to other non-invasive methods. We demonstrated the potential of this set-up by identifying two different populations of T-lymphocytes not distinguishable through visual assessment. We also assessed the effect of calcein on cell cytoplasmic properties and used it as a controlled experiment to demonstrate the possibility of this method to detect changes happening predominantly in the cytoplasm.

Graphical Abstract

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来源期刊
Biomedical Microdevices
Biomedical Microdevices 工程技术-工程:生物医学
CiteScore
6.90
自引率
3.60%
发文量
32
审稿时长
6 months
期刊介绍: Biomedical Microdevices: BioMEMS and Biomedical Nanotechnology is an interdisciplinary periodical devoted to all aspects of research in the medical diagnostic and therapeutic applications of Micro-Electro-Mechanical Systems (BioMEMS) and nanotechnology for medicine and biology. General subjects of interest include the design, characterization, testing, modeling and clinical validation of microfabricated systems, and their integration on-chip and in larger functional units. The specific interests of the Journal include systems for neural stimulation and recording, bioseparation technologies such as nanofilters and electrophoretic equipment, miniaturized analytic and DNA identification systems, biosensors, and micro/nanotechnologies for cell and tissue research, tissue engineering, cell transplantation, and the controlled release of drugs and biological molecules. Contributions reporting on fundamental and applied investigations of the material science, biochemistry, and physics of biomedical microdevices and nanotechnology are encouraged. A non-exhaustive list of fields of interest includes: nanoparticle synthesis, characterization, and validation of therapeutic or imaging efficacy in animal models; biocompatibility; biochemical modification of microfabricated devices, with reference to non-specific protein adsorption, and the active immobilization and patterning of proteins on micro/nanofabricated surfaces; the dynamics of fluids in micro-and-nano-fabricated channels; the electromechanical and structural response of micro/nanofabricated systems; the interactions of microdevices with cells and tissues, including biocompatibility and biodegradation studies; variations in the characteristics of the systems as a function of the micro/nanofabrication parameters.
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