Related Experiment Video
Updated: Sep 12, 2026

Cell Squeezing as a Robust, Microfluidic Intracellular Delivery Platform
Published on: November 8, 2013
High-throughput Nuclear Delivery and Rapid Expression of DNA via Mechanical and Electrical Cell-Membrane Disruption
Xiaoyun Ding1,2, Martin Stewart1,2, Armon Sharei1,2
1Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
Nuclear transfection of DNA into mammalian cells is challenging yet critical for many biological and medical studies. Here, by combining cell squeezing and electric-field-driven transport in a device that integrates microfluidic channels with constrictions and microelectrodes, we demonstrate nuclear delivery of plasmid DNA within 1 hour after treatment, the most rapid DNA expression in a high-throughput setting (up to millions of cells per minute per device). Passing cells at high speed through microfluidic constrictions smaller than the cell diameter mechanically disrupts the cell membrane, allowing a subsequent electric field to further disrupt the nuclear envelope and drive DNA molecules into the cytoplasm and nucleus. By tracking the localization of the ESCRT-III (endosomal sorting complexes required for transport) protein CHMP4B, we show that the integrity of the nuclear envelope is recovered within 15 minutes of treatment. We also provide insight into subcellular delivery by comparing the performance of the disruption-and-field-enhanced method with those of conventional chemical, electroporation, and manual-injection systems.
Related Concept Videos
Methods of Nuclear Reprogramming
Tissue Homogenization and Cell Lysis
Mechanical methods of tissue homogenization
These methods rely on applying external physical force to disrupt...

