A vector-free microfluidic platform for intracellular delivery Journal Article


Authors: Sharei, A.; Zoldan, J.; Adamo, A.; Sim, W. Y.; Cho, N.; Jackson, E.; Mao, S.; Schneider, S.; Han, M. J.; Lytton-Jean, A.; Basto, P. A.; Jhunjhunwala, S.; Lee, J.; Heller, D. A.; Kang, J. W.; Hartoularos, G. C.; Kim, K. S.; Anderson, D. G.; Langer, R.; Jensen, K. F.
Article Title: A vector-free microfluidic platform for intracellular delivery
Abstract: Intracellular delivery of macromolecules is a challenge in research and therapeutic applications. Existing vector-based and physical methods have limitations, including their reliance on exogenous materials or electrical fields, which can lead to toxicity or off-target effects. We describe a microfluidic approach to delivery in which cells are mechanically deformed as they pass through a constriction 30-80% smaller than the cell diameter. The resulting controlled application of compression and shear forces results in the formation of transient holes that enable the diffusion of material from the surrounding buffer into the cytosol. The method has demonstrated the ability to deliver a range of material, such as carbon nanotubes, proteins, and siRNA, to 11 cell types, including embryonic stem cells and immune cells. When used for the delivery of transcription factors, the microfluidic devices produced a 10-fold improvement in colony formation relative to electroporation and cell-penetrating peptides. Indeed, its ability to deliver structurally diverse materials and its applicability to difficult-to-transfect primary cells indicate that this method could potentially enable many research and clinical applications.
Keywords: induced pluripotent stem cells; reprogramming; drug delivery; nanoparticle delivery; protein delivery
Journal Title: Proceedings of the National Academy of Sciences of the United States of America
Volume: 110
Issue: 6
ISSN: 0027-8424
Publisher: National Academy of Sciences  
Date Published: 2013-02-05
Start Page: 2082
End Page: 2087
Language: English
DOI: 10.1073/pnas.1218705110
PROVIDER: scopus
PMCID: PMC3568376
PUBMED: 23341631
DOI/URL:
Notes: --- - "Export Date: 1 March 2013" - "CODEN: PNASA" - "Source: Scopus"
Altmetric
Citation Impact
BMJ Impact Analytics
MSK Authors
  1. Daniel Alan Heller
    112 Heller