Electro-deformation spectroscopy: A unified method for simultaneous electrical and mechanical characterization of single cells

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2025-01-15 DOI:10.1016/j.actbio.2024.12.012
E Du , Hongyuan Xu , Liliana Ponkratova
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Abstract

The intrinsic electrical and mechanical properties of cells are not only valuable biophysical markers reflective of physiological conditions but also play important roles in the development and progression of human diseases. Existing single-cell techniques are restricted to assessing either mechanical or electrical properties. We introduce the development of electro-deformation spectroscopy (EDS), namely the frequency-dependent electro-deformation, as a new method for simultaneous electrical and mechanical characterization of individual cells in suspension. To facilitate the practical use of this technology, we developed a testing procedure that evaluates red blood cells (RBCs) directly from whole blood in a simple microfluidic system, employing an electric field magnitude of 34 kV/m over a frequency range of 15 MHz to 100 kHz. The EDS measurement is performed under stationary conditions without special cell stabilization, at a moderate throughput of 50–100 cells per minute. We develop an experimental-computational framework to decouple cell electromechanics by optimizing the most suitable parameters of the relative permittivity of cell membrane, cytoplasm electrical conductivity, and membrane shear modulus. This technique, tested on RBCs from 4 healthy human samples, revealed membrane relative permittivity of 3.6 – 5.8, membrane shear modulus of 2.2 – 2.8 µN/m, and cytoplasm conductivity of 0.47 – 0.81 S/m. EDS analysis identifies the marked intrasample heterogeneity and individual variability in both cellular electrical and mechanical properties. The EDS framework can be readily used to test RBCs across different species, pathological states, and other cell types of similar structures as RBCs.

Statement of significance

This work introduces electro-deformation spectroscopy (EDS) as a unified method for simultaneous electrical and mechanical characterization of single cells in suspension. This is the first-of-its-kind technology for such purposes. EDS can be performed in a simple microfluidic system with minimal sample preparation, making it a convenient and powerful tool for label-free, non-invasive single-cell analysis. We validate the applicability of EDS by measuring the intrasample heterogeneity and individual variability based on the electromechanical parameters of interest for human red blood cells. Single-cell EDS has the potential to enable rapid and reliable detection of cellular changes by diseases or drug treatments and provide insights into the fundamental bioelectromechanical mechanisms of cellular adaptation and dysfunction. This work advances the field of single-cell analysis and contributes to the development of biomaterials and biotechnologies based on cellular electromechanics.

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电变形光谱:对单个细胞同时进行电气和机械表征的统一方法。
细胞固有的电学和力学特性不仅是反映生理状况的有价值的生物物理标志物,而且在人类疾病的发生和发展中起着重要作用。现有的单细胞技术仅限于评估机械或电气性能。我们介绍了电变形光谱(EDS)的发展,即频率相关的电变形,作为一种同时表征悬浮液中单个细胞的电气和机械特性的新方法。为了促进这项技术的实际应用,我们开发了一种测试程序,在一个简单的微流体系统中直接从全血中评估红细胞(rbc),在15 MHz到100 kHz的频率范围内使用34 kV/m的电场。EDS测量在固定条件下进行,没有特殊的细胞稳定,在每分钟50-100个细胞的中等吞吐量。我们开发了一个实验-计算框架,通过优化细胞膜的相对介电常数,细胞质电导率和膜剪切模量的最合适参数来解耦细胞电力学。该技术在4个健康人红细胞样本上测试,显示膜相对介电常数为3.6 - 5.8,膜剪切模量为2.2 - 2.8µN/m,细胞质电导率为0.47 - 0.81 S/m。能谱分析确定了细胞电学和机械性能的显著样本异质性和个体可变性。EDS框架可以很容易地用于测试不同种类、病理状态和其他类似红细胞结构的细胞类型的红细胞。意义声明:这项工作引入了电变形光谱(EDS)作为一种统一的方法来同时表征悬浮液中单个细胞的电气和机械特性。这是此类技术的首创。EDS可以在一个简单的微流体系统中进行,只需最少的样品制备,使其成为一种方便而强大的工具,用于无标签,非侵入性单细胞分析。我们通过测量基于人类红细胞机电参数的样本内异质性和个体变异性来验证EDS的适用性。单细胞EDS具有快速可靠地检测疾病或药物治疗引起的细胞变化的潜力,并为细胞适应和功能障碍的基本生物机电机制提供见解。这项工作推动了单细胞分析领域的发展,并为基于细胞电力学的生物材料和生物技术的发展做出了贡献。
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Corrigendum to “A composite hydrogel with co-delivery of antimicrobial peptides and platelet-rich plasma to enhance healing of infected wounds in diabetes” [Acta Biomaterialia 2021, 124, 205-218] Corrigendum to “Vascular Endothelial Growth Factor-Capturing Aligned Electrospun Polycaprolactone/Gelatin Nanofibers Promote Patellar Ligament Regeneration” [Acta Biomaterialia 140, 2022, 122-246] Physical exercise impacts bone remodeling around bio-resorbable magnesium implants A metal-organic framework functionalized CaO2-based cascade nanoreactor induces synergistic cuproptosis/ferroptosis and Ca2+ overload-mediated mitochondrial damage for enhanced sono-chemodynamic immunotherapy
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