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An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells

Circulating tumor cell (CTC) test is currently used as a biomarker in cancer treatment. Unfortunately, the poor reproducibility and limited sensitivity with the CTC detection have limited its potential impact on clinical application. A reliable automated CTC detection system is therefore needed. We...

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Autores principales: Jou, Hei-Jen, Chou, Li-Yun, Chang, Wen-Chun, Ho, Hsin-Cheng, Zhang, Wan-Ting, Ling, Pei-Ying, Tsai, Ko-Hsin, Chen, Szu-Hua, Chen, Tze-Ho, Lo, Pei-Hsuan, Chen, Ming, Hsu, Heng-Tung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8143501/
https://www.ncbi.nlm.nih.gov/pubmed/33919456
http://dx.doi.org/10.3390/mi12050473
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author Jou, Hei-Jen
Chou, Li-Yun
Chang, Wen-Chun
Ho, Hsin-Cheng
Zhang, Wan-Ting
Ling, Pei-Ying
Tsai, Ko-Hsin
Chen, Szu-Hua
Chen, Tze-Ho
Lo, Pei-Hsuan
Chen, Ming
Hsu, Heng-Tung
author_facet Jou, Hei-Jen
Chou, Li-Yun
Chang, Wen-Chun
Ho, Hsin-Cheng
Zhang, Wan-Ting
Ling, Pei-Ying
Tsai, Ko-Hsin
Chen, Szu-Hua
Chen, Tze-Ho
Lo, Pei-Hsuan
Chen, Ming
Hsu, Heng-Tung
author_sort Jou, Hei-Jen
collection PubMed
description Circulating tumor cell (CTC) test is currently used as a biomarker in cancer treatment. Unfortunately, the poor reproducibility and limited sensitivity with the CTC detection have limited its potential impact on clinical application. A reliable automated CTC detection system is therefore needed. We have designed an automated microfluidic chip-based CTC detection system and hypothesize this novel system can reliably detect CTC from clinical specimens. SKOV3 ovarian cancer cell line was used first to test the reliability of our system. Ten healthy volunteers, 5 patients with benign ovarian tumors, and 8 patients with epithelial ovarian cancer (EOC) were recruited to validate the CTC capturing efficacy in the peripheral blood. The capture rates for spiking test in SKOV3 cells were 48.3% and 89.6% by using anti-EpCAM antibody alone and a combination of anti-EpCAM antibody and anti-N-cadherin antibody, respectively. The system was sensitive to detection of low cell count and showed a linear relationship with the cell counts in our test range. The sensitivity and specificity were 62.5% and 100% when CTC was used as a biomarker for EOC. Our results demonstrated that this automatic CTC platform has a high capture rate and is feasible for detection of CTCs in EOC.
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spelling pubmed-81435012021-05-25 An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells Jou, Hei-Jen Chou, Li-Yun Chang, Wen-Chun Ho, Hsin-Cheng Zhang, Wan-Ting Ling, Pei-Ying Tsai, Ko-Hsin Chen, Szu-Hua Chen, Tze-Ho Lo, Pei-Hsuan Chen, Ming Hsu, Heng-Tung Micromachines (Basel) Article Circulating tumor cell (CTC) test is currently used as a biomarker in cancer treatment. Unfortunately, the poor reproducibility and limited sensitivity with the CTC detection have limited its potential impact on clinical application. A reliable automated CTC detection system is therefore needed. We have designed an automated microfluidic chip-based CTC detection system and hypothesize this novel system can reliably detect CTC from clinical specimens. SKOV3 ovarian cancer cell line was used first to test the reliability of our system. Ten healthy volunteers, 5 patients with benign ovarian tumors, and 8 patients with epithelial ovarian cancer (EOC) were recruited to validate the CTC capturing efficacy in the peripheral blood. The capture rates for spiking test in SKOV3 cells were 48.3% and 89.6% by using anti-EpCAM antibody alone and a combination of anti-EpCAM antibody and anti-N-cadherin antibody, respectively. The system was sensitive to detection of low cell count and showed a linear relationship with the cell counts in our test range. The sensitivity and specificity were 62.5% and 100% when CTC was used as a biomarker for EOC. Our results demonstrated that this automatic CTC platform has a high capture rate and is feasible for detection of CTCs in EOC. MDPI 2021-04-21 /pmc/articles/PMC8143501/ /pubmed/33919456 http://dx.doi.org/10.3390/mi12050473 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jou, Hei-Jen
Chou, Li-Yun
Chang, Wen-Chun
Ho, Hsin-Cheng
Zhang, Wan-Ting
Ling, Pei-Ying
Tsai, Ko-Hsin
Chen, Szu-Hua
Chen, Tze-Ho
Lo, Pei-Hsuan
Chen, Ming
Hsu, Heng-Tung
An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells
title An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells
title_full An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells
title_fullStr An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells
title_full_unstemmed An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells
title_short An Automatic Platform Based on Nanostructured Microfluidic Chip for Isolating and Identification of Circulating Tumor Cells
title_sort automatic platform based on nanostructured microfluidic chip for isolating and identification of circulating tumor cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8143501/
https://www.ncbi.nlm.nih.gov/pubmed/33919456
http://dx.doi.org/10.3390/mi12050473
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