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1.
Nanotechnology ; 25(12): 125704, 2014 Mar 28.
Article in English | MEDLINE | ID: mdl-24577143

ABSTRACT

In the past decade carbon nanotubes (CNTs) have been widely studied as a potential drug-delivery system, especially with functionality for cellular targeting. Yet, little is known about the actual process of docking to cell receptors and transport dynamics after internalization. Here we performed single-particle studies of folic acid (FA) mediated CNT binding to human carcinoma cells and their transport inside the cytosol. In particular, we employed molecular recognition force spectroscopy, an atomic force microscopy based method, to visualize and quantify docking of FA functionalized CNTs to FA binding receptors in terms of binding probability and binding force. We then traced individual fluorescently labeled, FA functionalized CNTs after specific uptake, and created a dynamic 'roadmap' that clearly showed trajectories of directed diffusion and areas of nanotube confinement in the cytosol. Our results demonstrate the potential of a single-molecule approach for investigation of drug-delivery vehicles and their targeting capacity.


Subject(s)
Cytosol/pathology , Drug Delivery Systems/methods , Folic Acid/chemistry , Nanotubes, Carbon/chemistry , Cell Line, Tumor , Folic Acid/pharmacology , Humans , Microscopy, Atomic Force , Molecular Docking Simulation , Nocodazole/pharmacology
2.
Ultramicroscopy ; 109(8): 899-906, 2009 Jul.
Article in English | MEDLINE | ID: mdl-19375857

ABSTRACT

We present a comparative study of several non-covalent approaches to disperse, debundle and non-covalently functionalize double-walled carbon nanotubes (DWNTs). We investigated the ability of bovine serum albumin (BSA), phospholipids grafted onto amine-terminated polyethylene glycol (PL-PEG(2000)-NH(2)), as well as a combination thereof, to coat purified DWNTs. Topographical imaging with the atomic force microscope (AFM) was used to assess the coating of individual DWNTs and the degree of debundling and dispersion. Topographical images showed that functionalized DWNTs are better separated and less aggregated than pristine DWNTs and that the different coating methods differ in their abilities to successfully debundle and disperse DWNTs. Height profiles indicated an increase in the diameter of DWNTs depending on the functionalization method and revealed adsorption of single molecules onto the nanotubes. Biofunctionalization of the DWNT surface was achieved by coating DWNTs with biotinylated BSA, providing for biospecific binding of streptavidin in a simple incubation step. Finally, biotin-BSA-functionalized DWNTs were immobilized on an avidin layer via the specific avidin-biotin interaction.


Subject(s)
Nanotubes, Carbon/chemistry , Nanotubes, Carbon/ultrastructure , Phospholipids/metabolism , Polyethylene Glycols/metabolism , Serum Albumin/metabolism , Animals , Biotin/metabolism , Cattle , Microscopy, Atomic Force , Protein Binding , Streptavidin/metabolism
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