Title :
A quantum dot nano-carrier system for targeted drug delivery
Author :
Barry, Hadiatou ; Gettens, Robert ; English, Anthony
Author_Institution :
Dept. of Biomed. Eng., Western New England Univ., Springfield, MA, USA
Abstract :
Nano-carrier systems for in-vivo targeted delivery have the potential to make important contributions to cancer therapy. The application of layer-by-layer methods for fabricating nano-carrier encapsulation systems is a particularly promising method. This study therefore investigated the quantification of layer-by-layer quantum dot encapsulation systems using fluorescence measurements, atomic force microscopy, and dynamic light scattering. Particle concentrations between 1010 and 1011 particles/mL showed relatively large changes in the fluorescence intensity. Particle sizing using atomic force microscopy and dynamic light scattering measurements were in qualitative agreement with each other and provided complimentary information. The strengths and weaknesses of atomic force microscopy and dynamic light scattering methods for quantifying nano-carrier systems are discussed.
Keywords :
atomic force microscopy; cancer; drug delivery systems; encapsulation; fluorescence; light scattering; multilayers; nanocomposites; nanofabrication; nanomedicine; nanoparticles; particle size; quantum dots; spectral line intensity; atomic force microscopy; cancer therapy; dynamic light scattering; fluorescence intensity; fluorescence measurement; in vivo targeted drug delivery; layer-by-layer method; layer-by-layer quantum dot encapsulation system quantification; nanocarrier encapsulation system fabrication; nanocarrier system quantification; particle concentration; particle sizing; quantum dot nanocarrier system; Atmospheric measurements; Atomic force microscopy; Atomic measurements; Light scattering; Nanobioscience; Quantum dots; Drug Delivery; Layer-by-layer; Nanoparticles;
Conference_Titel :
Biomedical Engineering Conference (NEBEC), 2015 41st Annual Northeast
Conference_Location :
Troy, NY
Print_ISBN :
978-1-4799-8358-2
DOI :
10.1109/NEBEC.2015.7117218