Biomedical Engineering Reference
In-Depth Information
Dobrovolskaia, M., Germolec, D. and Weaver, J. (2009) Evaluation
of nanoparticle immunotoxicity. Nature Nanotechnology, 4,
411-414.
Dobrovolskaia, M. and McNeil, S. (2007) Immunological proper-
ties of engineered nanomaterials. Nature Nanotechnology, 2,
469-478.
El-Sayed, I. (2010) Nanotechnology in head and neck cancer: The
race is on. Current Oncology Reports, 12, 121-128.
El-Sayed, I. H., Huang, X. and El-Sayed, M. A. (2006) Selective
laser photo-thermal therapy of epithelial carcinoma using
anti-EGFR antibody conjugated gold nanoparticles. Cancer
Letters, 239, 129-135.
Elliott, A., Schwartz, J., Wang, J. et al. (2009) Quantitative com-
parison of delta P1 versus optical diffusion approximations
for modeling near-infrared gold nanoshell heating. Medical
Physics, 36, 1351.
Elliott, A. M., Stafford, R. J., Schwartz, J. et al. (2007) Laser-induced
thermal response and characterization of nanoparticles for
cancer treatment using magnetic resonance thermal imag-
ing. Medical Physics, 34, 3102-3108.
Farrell, T., Patterson, M. and Wilson, B. (1992) A diffusion theory
model of spatially resolved, steady-state diffuse reflectance
for the noninvasive determination of tissue optical proper-
ties in vivo . Med. Phys, 19, 879-888.
Feng, Y., Fuentes, D., Hawkins, A. et al. (2009) Nanoshell-
mediated laser surgery simulation for prostate cancer treat-
ment. Engineering with Computers, 25, 3-13.
Fischer, H. and Chan, W. (2007) Nanotoxicity: The growing need for
in vivo study. Current Opinion in Biotechnology, 18, 565-571.
Galanzha, E., Shashkov, E., Kelly, T. et al. (2009) In vivo magnetic
enrichment and multiplex photoacoustic detection of cir-
culating tumour cells. Nature Nanotechnology, 4, 855-860.
Gobin, A., Lee, M., Halas, N. et al. (2007) Near-infrared resonant
nanoshells for combined optical imaging and photothermal
cancer therapy. Nano Lett, 7, 1929-1934.
Gobin, A. M., Watkins, E. M., Quevedo, E. et al. (2010) Near
infrared resonant gold/gold sulfide nanoparticles as a
photothermal cancer therapeutic agent. Small, 6, 745-752.
Goel, R., Shah, N., Visaria, R. et al. (2009) Biodistribution of
TNF-alpha-coated gold nanoparticles in an in vivo model
system. Nanomedicine (Lond), 4, 401-10.
Goldenberg, H. and Tranter, C. J. (1952) Heat flow in an infi-
nite medium heated by a sphere. British Journal of Applied
Physics , 296.
Goodrich, G. P., Bao, L. L., Gill-Sharp, K. et al. (2010) Photothermal
therapy in a murine colon cancer model using near-infrared
absorbing gold nanorods. Journal of Biomedical Optics, 15,
018001.
Govorov, A., Zhang, W., Skeini, T. et al. (2006) Gold nanoparticle
ensembles as heaters and actuators: Melting and collective
plasmon resonances. Nanoscale Research Letters, 1, 84-90.
Hainfeld, J., Slatkin, D. and Smilowitz, H. (2004) The use of gold
nanoparticles to enhance radiotherapy in mice. Physics in
Medicine and Biology, 49, N309.
He, X., Bhowmick, S. and Bischof, J. C. (2009) Thermal therapy in
urologic systems: A comparison of arrhenius and thermal
isoeffective dose models in predicting hyperthermic injury.
J Biomech Eng, 131, 074507.
He, X. and Bischof, J. (2003) Quantification of temperature and
injury response in thermal therapy and cryosurgery. Critical
Reviews in Biomedical Engineering, 31, 355-421.
He, X., Wolkers, W. F., Crowe, J. H. et al. (2004) In situ thermal
denaturation of proteins in dunning AT-1 prostate cancer
cells: Implication for hyperthermic cell injury. Ann Biomed
Eng, 32, 1384-98.
Hirsch, L., Stafford, R., Bankson, J. et al. (2003) Nanoshell-
mediated near-infrared thermal therapy of tumors under
magnetic resonance guidance. Proceedings of the National
Academy of Sciences of the United States of America, 100,
13549.
Hirsch, L. R., Gobin, A. M., Lowery, A. R. et al. (2006) Metal
nanoshells. Annals of Biomedical Engineering, 34, 15-22.
Hu, M., Chen, J., Li, Z. et al. (2006) Gold nanostructures:
Engineering their plasmonic properties for biomedical
applications. Chemical Society Reviews, 35, 1084-1094.
Hu, M. and Hartland, G. (2002) Heat dissipation for Au particles
in aqueous solution: Relaxation time versus size. J. Phys.
Chem. B, 106, 7029-7033.
Huang, H.-C., Rege, K. and Heys, J. J. (2010) Spatiotemporal tem-
perature distribution and cancer cell death in response to
extracellular hyperthermia induced by gold nanorods. ACS
Nano, 4, 2892-2900.
Huang, X., El-Sayed, I. H., Qian, W. et al. (2006) Cancer cell imag-
ing and photothermal therapy in the near-infrared region
by using gold nanorods. Journal of the American Chemical
Society, 128, 2115-2120.
Huang, X., Neretina, S. and El-Sayed, M. (2009) Gold nanorods:
From synthesis and properties to biological and biomedical
applications. Advanced Materials, 21, 4880-4910.
Huettmann, G., Radt, B., Serbin, J. et al. (2003) Inactivation of
proteins by irradiation of gold nanoparticles with nano-and
picosecond laser pulses. Proceedings of SPIE, 5142, 88-95.
Jacques, S. (1993) Role of tissue optics and pulse duration on
tissue effects during high-power laser irradiation. Applied
Optics, 32, 2447-2454.
Jain, P., Lee, K., El-Sayed, I. et al. (2006) Calculated absorption and
scattering properties of gold nanoparticles of different size,
shape, and composition: Applications in biological imaging
and biomedicine. J. Phys. Chem. B, 110, 7238-7248.
Jain, P. K., El-Sayed, I. H. and El-Sayed, M. A. (2007a) Au
nanoparticles target cancer. Nano Today, 2, 18-29.
Jain, P. K., Huang, X., El-Sayed, I. H. et al. (2007b) Review of some
interesting surface plasmon resonance-enhanced proper-
ties of noble metal nanoparticles and their applications to
biosystems. Plasmonics, 2, 107-118.
Jöbsis-Vandervliet, F. (1999) Discovery of the near-infrared win-
dow into the body and the early development of near-infra-
red spectroscopy. Journal of Biomedical Optics, 4, 392.
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