Quantification of Cell Death Using an Impedance-Based Microfluidic Device

被引:30
|
作者
Mansoorifar, Amin [1 ]
Koklu, Anil [1 ]
Beskok, Ali [1 ]
机构
[1] Southern Methodist Univ, Dept Mech Engn, Dallas, TX 75205 USA
关键词
DRUG DISCOVERY; CHIP; TECHNOLOGIES; FUTURE;
D O I
10.1021/acs.analchem.8b05890
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Dielectric spectroscopy is a nondestructive method to characterize dielectric properties by measuring impedance data over a frequency spectrum. This method has been widely used for various applications such as counting, sizing, and monitoring biological cells and particles. Recently, utilization of this method has been suggested in various stages of the drug discovery process due to low sample consumption and fast analysis time. In this study, we used a previously developed microfluidic system to confine single PC-3 cells in microwells using dielectrophoretic forces and perform the impedance measurements. PC-3 cells are treated with 100 mu M Enzalutamide drug, and their impedance response is recorded until the cells are totally dead as predicted with viability tests. Four different approaches are used to analyze the impedance spectrum. Equivalent circuit modeling is used to extract the cell electrical properties as a function of time. Principal component analysis (PCA) is used to quantify cellular response to drug as a function of time. Single frequency measurements are conducted to observe how the cells respond over time. Finally, opacity ratio is defined as an additional quantification method. This device is capable of quantitatively measuring drug effects on biological cells and detecting cell death. The results show that the proposed microfluidic system has the potential to be used in early stages of the drug discovery process.
引用
收藏
页码:4140 / 4148
页数:9
相关论文
共 50 条
  • [31] Impedance-based analysis of Natural Killer cell stimulation
    Fasbender, Frank
    Watzl, Carsten
    SCIENTIFIC REPORTS, 2018, 8
  • [32] Impedance-based cell monitoring: Barrier properties and beyond
    Benson K.
    Cramer S.
    Galla H.-J.
    Fluids and Barriers of the CNS, 10 (1)
  • [33] Hydrodynamic and electrical considerations in the design of a four-electrode impedance-based microfluidic device (vol 400, pg 1347, 2011)
    Justin, Gusphyl
    Nasir, Mansoor
    Ligler, Frances S.
    ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2011, 400 (09) : 3177 - 3177
  • [34] Impedance-based analysis of Natural Killer cell stimulation
    Frank Fasbender
    Carsten Watzl
    Scientific Reports, 8
  • [35] Rapid and Accurate Antimicrobial Susceptibility Testing Using Label-Free Electrical Impedance-Based Microfluidic Platform
    Chen, Jiahong
    Zhong, Jianwei
    Chang, Yifu
    Zhou, Yinning
    Koo, Seok Hwee
    Tan, Thean Yen
    Lei, Hongtao
    Ai, Ye
    SMALL, 2024, 20 (06)
  • [36] A Digital Microfluidic Device Integrated with Electrochemical Impedance Spectroscopy for Cell-Based Immunoassay
    Zhang, Yuqian
    Liu, Yuguang
    BIOSENSORS-BASEL, 2022, 12 (05):
  • [37] Electrical Impedance Tomography for Biological Cell Sensing with Microfluidic Device
    Yao J.
    Liu X.
    Xu Z.
    Zhao T.
    Chen B.
    Wu H.
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2019, 55 (02): : 1 - 9
  • [38] Impedance-based damage assessment using Piezoelectric Sensors
    Rim, Mi-Sun
    Yoo, Seung-Jae
    Lee, In
    Song, Jae-Hoon
    Yang, Jae-Won
    SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2011, 2011, 7981
  • [39] Electrical characteristics analysis of various cancer cells using a microfluidic device based on single-cell impedance measurement
    Hong, Jhih-Lin
    Lan, Kung-Chieh
    Jang, Ling-Sheng
    SENSORS AND ACTUATORS B-CHEMICAL, 2012, 173 : 927 - 934
  • [40] Quantification of Cell Number in 3-Dimensional Cell Culture Construct by Impedance Measurement using Microfluidic Technology
    Lei, Kin Fong
    Wu, Min-Hsien
    Hsu, Che-Wei
    Lin, Cheng-Yuan
    INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2012, 7 (09): : 8848 - 8858