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Hydroelectric Actuator for 3-Dimensional Analysis of Electrophoretic and Dielectrophoretic Behavior of Cancer Cells; Suitable in Diagnosis and Invasion Studies Publisher



Moharamipour S1 ; Aminifar M1 ; Foroughigilvaee MR1, 2 ; Faranoush P1, 2 ; Mahdavi R1 ; Abadijoo H1 ; Parniani M3 ; Abbasvandi F1, 4 ; Mansouri S5 ; Abdolahad M1, 6, 7
Authors
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Authors Affiliations
  1. 1. Nano Bio Electronic Devices Lab, Cancer Electronics Research Group, School of Electrical and Computer Engineering, College of Engineering, University of Tehran, Tehran, Iran
  2. 2. Pediatric Growth and Development Research Center, Institute of Endocrinology and Metabolism, Iran University of Medical Sciences, Tehran, Iran
  3. 3. Pathology Department, Breast Cancer Research Center, Motamed Cancer Institute, ACECR, Tehran, Iran
  4. 4. ATMP Department, Breast Cancer Research Center, Motamed Cancer Institute, ACECR, P.O. BOX: 15179/64311, Tehran, Iran
  5. 5. Radiation Oncology Research Center (RORC), Cancer Institute, Tehran University of Medical Sciences, Tehran, Iran
  6. 6. UT and TUMS Cancer Electronics Research Center, Tehran University of Medical Sciences, Tehran, Iran
  7. 7. Cancer Institute, Imam Khomeini Hospital, Tehran University of Medical Sciences, Tehran, Iran

Source: Biomaterials Advances Published:2023


Abstract

Cancer is a cellular-based disease, so cytological diagnosis is one of the main challenges for its early detection. An extensive number of diagnostic methods have been developed to separate cancerous cells from normal ones, in electrical methods attract progressive attention. Identifying and specifying different cells requires understanding their dielectric and electric properties. This study evaluated MDA-MB-231, HUVEC, and MCF-10A cell lines, WBCs isolated from blood, and patient-derived cell samples with a cylindrical body with two transparent FTO (fluorine-doped tin oxide) plate electrodes. Cell mobility rates were recorded in response to these stimuli. It was observed that cancer cells demonstrate drastic changes in their motility in the presence and absence of an electric field (DC/AC). Also, solution viscosity's effect on cancer cells' capturing efficacy was evaluated. This research's main distinguished specification uses a non-microfluidic platform to detect and pathologically evaluate cytological samples with a simple, cheap, and repeatable platform. The capturing procedure was carried out on a cytological slide without any complicated electrode patterning with the ability of cytological staining. Moreover, this platform successfully designed and experimented with the invasion assay (the ability of captured cancer cells to invade normal cells). © 2023 Elsevier B.V.