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Cell Squeezing as a Robust,Microfluidic Intracellular Delivery Platform
Authors:Armon Sharei  Nahyun Cho  Shirley Mao  Emily Jackson  Roberta Poceviciute  Andrea Adamo  Janet Zoldan  Robert Langer  Klavs F Jensen
Institution:1.Department of Chemical Engineering, Massachusetts Institute of Technology;2.David H. Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology
Abstract:Rapid mechanical deformation of cells has emerged as a promising, vector-free method for intracellular delivery of macromolecules and nanomaterials. This technology has shown potential in addressing previously challenging applications; including, delivery to primary immune cells, cell reprogramming, carbon nanotube, and quantum dot delivery. This vector-free microfluidic platform relies on mechanical disruption of the cell membrane to facilitate cytosolic delivery of the target material. Herein, we describe the detailed method of use for these microfluidic devices including, device assembly, cell preparation, and system operation. This delivery approach requires a brief optimization of device type and operating conditions for previously unreported applications. The provided instructions are generalizable to most cell types and delivery materials as this system does not require specialized buffers or chemical modification/conjugation steps. This work also provides recommendations on how to improve device performance and trouble-shoot potential issues related to clogging, low delivery efficiencies, and cell viability.
Keywords:Bioengineering  Issue 81  Transfection  microfluidic  vector-free  protein delivery  intracellular delivery  quantum dot delivery  cell reprogramming  siRNA
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