Issue 21, 2012

Exploring doxorubicin localization in eluting TiO2nanotube arrays through fluorescence correlation spectroscopy analysis

Abstract

Drug elution properties of TiO2 nanotube arrays have been largely investigated by means of solely macroscopic observations. Controversial elution performances have been reported so far and a clear comprehension of these phenomena is still missing as a consequence of a lack of molecular investigation methods. Here we propose a way to discern drug elution properties of nanotubes through the evaluation of drug localization by Fluorescence Correlation Spectroscopy (FCS) analysis. We verified this method upon doxorubicin elution from differently loaded TiO2 nanotubes. Diverse elution profiles were obtained from nanotubes filled by soaking and wet vacuum impregnation methods. Impregnated nanotubes controlled drug diffusion up to thirty days, while soaked samples completed elution in seven days. FCS analysis of doxorubicin motion in loaded nanotubes clarified that more than 90% of drugs dwell preferentially in inter-nanotube spaces in soaked samples due to decorrelation in a 2D fashion, while a 97% fraction of molecules showed 1D mobility ascribable to displacements along the nanotube vertical axis of wet vacuum impregnated nanotubes. The diverse drug localizations inferred from FCS measurements, together with distinct drug–surface interaction strengths resulting from diverse drug filling techniques, could explain the variability in elution kinetics.

Graphical abstract: Exploring doxorubicin localization in eluting TiO2 nanotube arrays through fluorescence correlation spectroscopy analysis

Supplementary files

Article information

Article type
Paper
Submitted
01 Aug 2012
Accepted
03 Sep 2012
First published
18 Sep 2012

Analyst, 2012,137, 5076-5081

Exploring doxorubicin localization in eluting TiO2 nanotube arrays through fluorescence correlation spectroscopy analysis

I. De Santo, L. Sanguigno, F. Causa, T. Monetta and P. A. Netti, Analyst, 2012, 137, 5076 DOI: 10.1039/C2AN36052G

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