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  5. Nanoparticle Adhesion to the Cell Membrane and Its effect on Nanoparticle Uptake Efficiency
 
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Nanoparticle Adhesion to the Cell Membrane and Its effect on Nanoparticle Uptake Efficiency

Author(s)
Lesniak, Anna  
Salvati, Anna  
Santos-Martinez, Maria J.  
Radomski, Marek W.  
Dawson, Kenneth A.  
Ã…berg, Christoffer  
Uri
http://hdl.handle.net/10197/4575
Date Issued
2013-01-09
Date Available
2013-09-13T09:01:46Z
Abstract
The interactions between nanosized particles and living systems are commonly mediated by what adsorbs to the nanoparticle in the biological environment, its biomolecular corona, rather than the pristine surface. Here, we characterize the adhesion toward the cell membrane of nanoparticles of different material and size and study how this is modulated by the presence or absence of a corona on the nanoparticle surface. The results are corroborated with adsorption to simple model supported lipid bilayers using a quartz crystal microbalance. We conclude that the adsorption of proteins on the nanoparticle surface strongly reduces nanoparticle adhesion in comparison to what is observed for the bare material. Nanoparticle uptake is described as a two-step process, where the nanoparticles initially adhere to the cell membrane and subsequently are internalized by the cells via energy-dependent pathways. The lowered adhesion in the presence of proteins thereby causes a concomitant decrease in nanoparticle uptake efficiency. The presence of a biomolecular corona may confer specific interactions between the nanoparticle-corona complex and the cell surface including triggering of regulated cell uptake. An important effect of the corona is, however, a reduction in the purely unspecific interactions between the bare material and the cell membrane, which in itself disregarding specific interactions, causes a decrease in cellular uptake. We suggest that future nanoparticle-cell studies include, together with characterization of size, charge, and dispersion stability, an evaluation of the adhesion properties of the material to relevant membranes.
Type of Material
Journal Article
Publisher
American Chemical Society
Journal
Journal of the American Chemical Society
Volume
135
Issue
4
Start Page
1438
End Page
1444
Copyright (Published Version)
2013 American Chemical Society
Subjects

Nanomaterials

Adsorption

Lipid bilayer

Quartz crystal microb...

Protein corona

Serum free

DOI
10.1021/ja309812z
Language
English
Status of Item
Peer reviewed
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by-nc-nd/3.0/ie/
File(s)
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Adhesion_manuscript_clean.pdf

Size

951.55 KB

Format

Adobe PDF

Checksum (MD5)

6475d3b1a40ca5391a6e901fe9959ed7

Owning collection
Chemistry Research Collection

Item descriptive metadata is released under a CC-0 (public domain) license: https://creativecommons.org/public-domain/cc0/.
All other content is subject to copyright.

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