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Enhancing the efficiency of lung cancer cell capture using microfluidic dielectrophoresis and aptamer-based surface modification.
Lin, Shu-Hui; Su, Tzu-Cheng; Huang, Shuo Jie; Jen, Chun-Ping.
Affiliation
  • Lin SH; Department of Surgical Pathology, Changhua Christian Hospital, Changhua, Taiwan, ROC.
  • Su TC; Department of Medical Laboratory Science and Biotechnology, Central Taiwan University of Science and Technology, Taichung, Taiwan, ROC.
  • Huang SJ; Department of Post-Baccalaureate Medicine, College of Medicine, National Chung Hsing University, Taichung, Taiwan, ROC.
  • Jen CP; Department of Surgical Pathology, Changhua Christian Hospital, Changhua, Taiwan, ROC.
Electrophoresis ; 45(11-12): 1088-1098, 2024 Jun.
Article in En | MEDLINE | ID: mdl-38175846
ABSTRACT
Metastasis remains a significant cause to cancer-related mortality, underscoring the critical need for early detection and analysis of circulating tumor cells (CTCs). This study presents a novel microfluidic chip designed to efficiently capture A549 lung cancer cells by combining dielectrophoresis (DEP) and aptamer-based binding, thereby enhancing capture efficiency and specificity. The microchip features interdigitated electrodes made of indium-tin-oxide that generate a nonuniform electric field to manipulate CTCs. Following three chip design, scenarios were investigated (A) bare glass surface, (B) glass modified with gold nanoparticles (AuNPs) only, and (C) glass modified with both AuNPs and aptamers. Experimental results demonstrate that AuNPs significantly enhance capture efficiency under DEP, with scenarios (B) and (C) exhibiting similar performance. Notably, scenario (C) stands out as aptamer-functionalized surfaces resisting fluid shear forces, achieving CTCs retention even after electric field deactivation. Additionally, an innovative reverse pumping method mitigates inlet clogging, enhancing experimental efficiency. This research offers valuable insights into optimizing surface modifications and understanding key factors influencing cell capture, contributing to the development of efficient cell manipulation techniques with potential applications in cancer research and personalized treatment options.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cell Separation / Microfluidic Analytical Techniques / Electrophoresis / Aptamers, Nucleotide / Metal Nanoparticles / Gold / Lung Neoplasms / Neoplastic Cells, Circulating Type of study: Screening_studies Limits: Humans Language: En Journal: Electrophoresis Year: 2024 Type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cell Separation / Microfluidic Analytical Techniques / Electrophoresis / Aptamers, Nucleotide / Metal Nanoparticles / Gold / Lung Neoplasms / Neoplastic Cells, Circulating Type of study: Screening_studies Limits: Humans Language: En Journal: Electrophoresis Year: 2024 Type: Article