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Target Cell Pre-enrichment and Whole Genome Amplification for Single Cell Downstream Characterization
Published on: May 15, 2018
In-situ cell extraction by open microfluidics combined with mass spectrometry for EpCAM analysis via DNA-mediated
Gaowa Xing1, Shuo Feng2, Qiang Zhang2
1Fujian Provincial Key Laboratory of Ecological Impacts and Treatment Technologies for Emerging Contaminants, College of Environmental & Biological Engineering, Putian University, Putian, 351100, PR China; Beijing Key Laboratory of Microanalysis Methods and Instrumentation, Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology (Ministry of Education), Department of Chemistry, Tsinghua University, Beijing, 100084, PR China; State Key Laboratory of Analog and Mixed-Signal VLSI, Institute of Microelectronics, Faculty of Science and Technology, MoE Frontiers Science Center for Precision Oncology, University of Macau, Macau SAR, PR China.
Abstract:
A sensitive analysis for self-carried biomarkers of tumor cells is of great significance for early tumor diagnosis and following treatment monitoring. In this work, open microfluidics combined with mass spectrometry for Epithelial cell adhesion molecule (EpCAM) analysis using DNA-mediated rolling circle amplification (RCA) was proposed. Following aptamer binding, the EpCAM signal was amplified and hybridized with a short DNA probe, which could be released by extracting with a denaturant agent and detected via mass spectrometry. The open-space microfluidic chip with hydrophilic regions and the regional open microfluidic chip with an extraction chamber provided an effective platform for EpCAM extraction and analysis at both the low-cell population level and even at the single-cell level. Such a strategy converted the analysis of EpCAM to the detection of DNA probes, enabling in-situ detection, as well as overcoming the limitation of cellular component contents and spatial location distribution of biomarkers. EpCAM signal was positively related to the number of tumor cells with a good linear range of 7-210, which could facilitate the evaluation of drug efficiency of 5-fluorouracil (5-FU) in different concentrations. In addition, the EpCAM analysis at a single-cell level could provide a qualitative distinction between tumor cells and normal cells. The two designed open microfluidics provide a new perspective for micro-total analysis and could be promisingly applied in tumor treatment monitoring and tumor identification in real cell samples.

