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Microfluidic-Assisted CTC Isolation and In Situ Monitoring Using Smart Magnetic Microgels
Authors:Amir Seyfoori  Seyyed Ali Seyyed Ebrahimi  Mohamadmahdi Samandari  Ehsan Samiei  Evan Stefanek  Cathie Garnis  Mohsen Akbari
Affiliation:1. Laboratory for Innovations in Micro Engineering (LiME), Department of Mechanical Engineering, University of Victoria, Victoria, BC V8P 5C2 Canada

Advanced Magnetic Materials Research Center, College of Engineering, University of Tehran, Tehran, Iran

Center for Advanced Materials and Related Technologies, University of Victoria, Victoria, BC V8P 5C2 Canada;2. Advanced Magnetic Materials Research Center, College of Engineering, University of Tehran, Tehran, Iran;3. Department of Biomedical Engineering, University of Connecticut Health Center, Farmington, CT, 06030 USA;4. Laboratory for Innovations in Micro Engineering (LiME), Department of Mechanical Engineering, University of Victoria, Victoria, BC V8P 5C2 Canada;5. Department of Integrative Oncology, British Columbia Cancer Research Centre, Vancouver, BC V5Z 1L3 Canada

Abstract:Capturing rare disease-associated biomarkers from body fluids can offer an early-stage diagnosis of different cancers. Circulating tumor cells (CTCs) are one of the major cancer biomarkers that provide insightful information about the cancer metastasis prognosis and disease progression. The most common clinical solutions for quantifying CTCs rely on the immunomagnetic separation of cells in whole blood. Microfluidic systems that perform magnetic particle separation have reported promising outcomes in this context, however, most of them suffer from limited efficiency due to the low magnetic force generated which is insufficient to trap cells in a defined position within microchannels. In this work, a novel method for making soft micromagnet patterns with optimized geometry and magnetic material is introduced. This technology is integrated into a bilayer microfluidic chip to localize an external magnetic field, consequently enhancing the capture efficiency (CE) of cancer cells labeled with the magnetic nano/hybrid microgels that are developed in the previous work. A combined numerical-experimental strategy is implemented to design the microfluidic device and optimize the capturing efficiency and to maximize the throughput. The proposed design enables high CE and purity of target cells and real-time time on-chip monitoring of their behavior. The strategy introduced in this paper offers a simple and low-cost yet robust opportunity for early-stage diagnosis and monitoring of cancer-associated biomarkers.
Keywords:bilayer microfluidic chips  micromagnets  nano/hybrid microgels  thermoresponsive  cell isolation
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