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In article number 1700705, Aram J. Chung and co‐workers report a novel inertial microfluidic cell stretcher capable of characterizing large populations of single‐cell deformability near real‐time in a fully automated manner. This study opens up a new path to practically measure large populations of single‐cell quantitative mechanical properties on‐the‐fly with high statistical significances, enabling...
Mechanical biomarkers associated with cytoskeletal structures have been reported as powerful label‐free cell state identifiers. In order to measure cell mechanical properties, traditional biophysical (e.g., atomic force microscopy, micropipette aspiration, optical stretchers) and microfluidic approaches were mainly employed; however, they critically suffer from low‐throughput, low‐sensitivity, and/or...
The separation of particles and cells is critical in many chemical and biological applications. This work presents a simple idea for utilizing a pair of permanent magnets to continuously separate diamagnetic particles and cells in ferrofluid flow through a straight microchannel. The first magnet is placed close to the microchannel for focusing the particle mixture to a single stream without the use...
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