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A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells

Circulating fetal cells (CFCs) in maternal blood are rare but have a strong potential to be the target for noninvasive prenatal diagnosis (NIPD). “Cell Reveal(TM) system” is a silicon-based microfluidic platform capable to capture rare cell populations in human circulation. The platform is recently...

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Autores principales: Ma, Gwo-Chin, Lin, Wen-Hsiang, Huang, Chung-Er, Chang, Ting-Yu, Liu, Jia-Yun, Yang, Ya-Jun, Lee, Mei-Hui, Wu, Wan-Ju, Chang, Yun-Shiang, Chen, Ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6413103/
https://www.ncbi.nlm.nih.gov/pubmed/30781548
http://dx.doi.org/10.3390/mi10020132
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author Ma, Gwo-Chin
Lin, Wen-Hsiang
Huang, Chung-Er
Chang, Ting-Yu
Liu, Jia-Yun
Yang, Ya-Jun
Lee, Mei-Hui
Wu, Wan-Ju
Chang, Yun-Shiang
Chen, Ming
author_facet Ma, Gwo-Chin
Lin, Wen-Hsiang
Huang, Chung-Er
Chang, Ting-Yu
Liu, Jia-Yun
Yang, Ya-Jun
Lee, Mei-Hui
Wu, Wan-Ju
Chang, Yun-Shiang
Chen, Ming
author_sort Ma, Gwo-Chin
collection PubMed
description Circulating fetal cells (CFCs) in maternal blood are rare but have a strong potential to be the target for noninvasive prenatal diagnosis (NIPD). “Cell Reveal(TM) system” is a silicon-based microfluidic platform capable to capture rare cell populations in human circulation. The platform is recently optimized to enhance the capture efficiency and system automation. In this study, spiking tests of SK-BR-3 breast cancer cells were used for the evaluation of capture efficiency. Then, peripheral bloods from 14 pregnant women whose fetuses have evidenced non-maternal genomic markers (e.g., de novo pathogenic copy number changes) were tested for the capture of circulating fetal nucleated red blood cells (fnRBCs). Captured cells were subjected to fluorescent in situ hybridization (FISH) on chip or recovered by an automated cell picker for molecular genetic analyses. The capture rate for the spiking tests is estimated as 88.1%. For the prenatal study, 2–71 fnRBCs were successfully captured from 2 mL of maternal blood in all pregnant women. The captured fnRBCs were verified to be from fetal origin. Our results demonstrated that the Cell Reveal(TM) system has a high capture efficiency and can be used for fnRBC capture that is feasible for the genetic diagnosis of fetuses without invasive procedures.
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spelling pubmed-64131032019-04-09 A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells Ma, Gwo-Chin Lin, Wen-Hsiang Huang, Chung-Er Chang, Ting-Yu Liu, Jia-Yun Yang, Ya-Jun Lee, Mei-Hui Wu, Wan-Ju Chang, Yun-Shiang Chen, Ming Micromachines (Basel) Article Circulating fetal cells (CFCs) in maternal blood are rare but have a strong potential to be the target for noninvasive prenatal diagnosis (NIPD). “Cell Reveal(TM) system” is a silicon-based microfluidic platform capable to capture rare cell populations in human circulation. The platform is recently optimized to enhance the capture efficiency and system automation. In this study, spiking tests of SK-BR-3 breast cancer cells were used for the evaluation of capture efficiency. Then, peripheral bloods from 14 pregnant women whose fetuses have evidenced non-maternal genomic markers (e.g., de novo pathogenic copy number changes) were tested for the capture of circulating fetal nucleated red blood cells (fnRBCs). Captured cells were subjected to fluorescent in situ hybridization (FISH) on chip or recovered by an automated cell picker for molecular genetic analyses. The capture rate for the spiking tests is estimated as 88.1%. For the prenatal study, 2–71 fnRBCs were successfully captured from 2 mL of maternal blood in all pregnant women. The captured fnRBCs were verified to be from fetal origin. Our results demonstrated that the Cell Reveal(TM) system has a high capture efficiency and can be used for fnRBC capture that is feasible for the genetic diagnosis of fetuses without invasive procedures. MDPI 2019-02-17 /pmc/articles/PMC6413103/ /pubmed/30781548 http://dx.doi.org/10.3390/mi10020132 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ma, Gwo-Chin
Lin, Wen-Hsiang
Huang, Chung-Er
Chang, Ting-Yu
Liu, Jia-Yun
Yang, Ya-Jun
Lee, Mei-Hui
Wu, Wan-Ju
Chang, Yun-Shiang
Chen, Ming
A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells
title A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells
title_full A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells
title_fullStr A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells
title_full_unstemmed A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells
title_short A Silicon-based Coral-like Nanostructured Microfluidics to Isolate Rare Cells in Human Circulation: Validation by SK-BR-3 Cancer Cell Line and Its Utility in Circulating Fetal Nucleated Red Blood Cells
title_sort silicon-based coral-like nanostructured microfluidics to isolate rare cells in human circulation: validation by sk-br-3 cancer cell line and its utility in circulating fetal nucleated red blood cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6413103/
https://www.ncbi.nlm.nih.gov/pubmed/30781548
http://dx.doi.org/10.3390/mi10020132
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