Title :
A Radio-Frequency Coupling Network for Heating of Citrate-Coated Gold Nanoparticles for Cancer Therapy: Design and Analysis
Author :
Kruse, Dustin E. ; Stephens, Douglas N. ; Lindfors, Heather A. ; Ingham, Elizabeth S. ; Paoli, Eric E. ; Ferrara, Katherine W.
Author_Institution :
Dept. of Biomed. Eng., Univ. of California at Davis, Davis, CA, USA
fDate :
7/1/2011 12:00:00 AM
Abstract :
Gold nanoparticles (GNPs) are nontoxic, can be functionalized with ligands, and preferentially accumulate in tumors. We have developed a 13.56-MHz RF-electromagnetic field (RFEM) delivery system capable of generating high E-fleld strengths required for noninvasive, noncontact heating of GNPs. The bulk heating and specific heating rates were measured as a function of NP size and concentration. It was found that heating is both size and concentration dependent, with 5 nm particles producing a 50.6 ± 0.2°C temperature rise in 30 s for 25 μg/mL gold (125 W input). The specific heating rate was also size and concentration dependent, with 5 nm particles producing a specific heating rate of 356 ± 78 kW/g gold at 16 μg/mL (125 W input). Furthermore, we demonstrate that cancer cells incubated with GNPs are killed when exposed to 13.56 MHz RF-EM fields. Compared to cells that were not incubated with GNPs, three out of four RF-treated groups showed a significant enhancement of cell death with GNPs (p <; 0.05). GNP-enhanced cell killing appears to require temperatures above 50°C for the experimental parameters used in this study. Transmission electron micrographs show extensive vacuolization with the combination of GNPs and RF treatment.
Keywords :
biological effects of microwaves; biomedical materials; cancer; gold; hyperthermia; nanomedicine; nanoparticles; particle size; radiation therapy; radiofrequency heating; tumours; RF treatment; RF-hyperthermia; cancer therapy; cell killing; citrate-coated gold nanoparticles; high E-fleld strengths; ligands based functionalized; noncontact heating; noninvasive heating; particle concentration; particle size; radiofrequency coupling network; transmission electron micrography; tumors; vacuolization; Capacitance; Gold; Heating; Integrated circuit modeling; Nanoparticles; Radio frequency; Temperature measurement; Cancer therapy; RF hyperthermia; gold nanoparticles (GNPs); nanotechnology; resonant circuits; Cell Death; Cell Line, Tumor; Citric Acid; Electromagnetic Fields; Equipment Design; Gold; Hot Temperature; Humans; Hyperthermia, Induced; Metal Nanoparticles; Microscopy, Electron, Transmission; Nanotechnology; Neoplasms; Particle Size;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2011.2124460