Electrical impedance sensing in stem cell research: Insights, applications, and future directions.

IF 3.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Progress in Biophysics & Molecular Biology Pub Date : 2024-11-16 DOI:10.1016/j.pbiomolbio.2024.11.004
Hassan Moghtaderi, Saeed Mohahammadi, Golfam Sadeghian, Mahua Choudhury, Ahmed Al-Harrasi, Shaikh Mizanoor Rahman
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Abstract

The exceptional differentiation abilities of stem cells make them ideal candidates for cell replacement therapies. Considering their great potential, researchers should understand how stem cells interact with other cell types. The production of high-quality differentiated cells is crucial for favorable treatment and makes them an ideal choice for clinical applications. Label-free stem cell monitoring approaches are anticipated to be more effective in this context, as they ensure quality of differentiation while preserving the therapeutic potential. Electric cell-substrate impedance sensing (ECIS) is a nonintrusive technique that enables cell quantification through continuous monitoring of adherent cell behavior using electronic transcellular impedance measurements. This technique also facilitates the study of cell growth, motility, differentiation, drug effects, and cell barrier functions. Therefore, numerous studies have identified ECIS as an effective method for monitoring stem cell quality and differentiation. In this review, we discuss the current understanding of ECIS's achievements in examining cell behaviors and the potential applications of ECIS arrays in preclinical stem cell research. Moreover, we highlight our present knowledge concerning ECIS's contributions in examining cell behaviors and speculate about the future uses of ECIS arrays in preclinical stem cell research. This review also aims to stimulate research on electrochemical biosensors for future applications in regenerative medicine.

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干细胞研究中的电阻抗传感:见解、应用和未来方向。
干细胞具有卓越的分化能力,是细胞替代疗法的理想候选者。考虑到干细胞的巨大潜力,研究人员应了解干细胞如何与其他类型的细胞相互作用。生产高质量的分化细胞对治疗效果至关重要,也是临床应用的理想选择。在这种情况下,无标签干细胞监测方法预计会更加有效,因为它们既能确保分化质量,又能保持治疗潜力。电细胞-基底阻抗传感(ECIS)是一种非侵入性技术,通过电子跨细胞阻抗测量连续监测粘附细胞的行为,实现细胞量化。这项技术还有助于研究细胞的生长、运动、分化、药物作用和细胞屏障功能。因此,许多研究已将ECIS确定为监测干细胞质量和分化的有效方法。在这篇综述中,我们将讨论目前对ECIS在检查细胞行为方面成就的理解,以及ECIS阵列在临床前干细胞研究中的潜在应用。此外,我们还强调了我们目前对ECIS在检查细胞行为方面所作贡献的了解,并推测了ECIS阵列在临床前干细胞研究中的未来用途。这篇综述还旨在促进电化学生物传感器在再生医学领域的未来应用研究。
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来源期刊
Progress in Biophysics & Molecular Biology
Progress in Biophysics & Molecular Biology 生物-生化与分子生物学
CiteScore
8.60
自引率
7.90%
发文量
85
审稿时长
85 days
期刊介绍: Progress in Biophysics & Molecular Biology is an international review journal and covers the ground between the physical and biological sciences since its launch in 1950. It indicates to the physicist the great variety of unsolved problems awaiting attention in biology and medicine. The biologist and biochemist will find that this journal presents new and stimulating ideas and novel approaches to studying and influencing structural and functional properties of the living organism. This journal will be of particular interest to biophysicists, biologists, biochemists, cell physiologists, systems biologists, and molecular biologists.
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