Chemistry Reference
In-Depth Information
173. Lal S, Clare SE, Halas NJ (2008) Nanoshell-enabled photothermal cancer therapy: impending
clinical impact. Acc Chem Res 41:1842
174. O'Neal DP, Hirsch LR, Halas NJ, Payne JD, West JL (2004) Photo-thermal tumor ablation in
mice using near infrared-absorbing nanoparticles. Cancer Lett 209:171
175. Loo C, Lowery A, Halas NJ, West J, Drezek R (2005) Immunotargeted nanoshells for
integrated cancer imaging and therapy. Nano Lett 5:709
176. Day ES, Zhang L, Thompson PA, Zawaski JA, Kaffes CC, Gaber MW, Blaney SM, West JL
(2012) Vascular-targeted photothermal therapy of an orthotopic murine glioma model.
Nanomedicine 7:1133
177. Zhou HS, Honma I, Komiyama H, Haus JW (1994) Controlled synthesis and quantum-size
effect in gold-coated nanoparticles. Phys Rev B 50:12052
178. Gobin AM, Watkins EM, Quevedo E, Colvin VL, West JL (2010) Near-infrared-resonant
gold/gold sulfide nanoparticles as a photothermal cancer therapeutic agent. Small 6:745
179. Hu M, Chen J, Li Z-Y, Au L, Hartland GV, Li X, Marquez M, Xia Y (2006) Gold
nanostructures: engineering their plasmonic properties for biomedical applications. Chem
Soc Rev 35:1084
180. Murphy CJ, Sau TK, Gole AM, Orendorff CJ, Gao J, Gou L, Hunyadi SE, Li T (2005)
Anisotropic metal nanoparticles: synthesis, assembly, and optical applications. J Phys Chem
B 109:13857
181. Huang H-C, Yang Y, Nanda A, Koria P, Rege K (2011) Synergistic administration of
photothermal therapy and chemotherapy to cancer cells using polypeptide-based degradable
plasmonic matrices. Nanomedicine 6:459
182. Norman RS, Stone JW, Gole A, Murphy CJ, Sabo-Attwood TL (2007) Targeted photothermal
lysis of the pathogenic bacteria, Pseudomonas aeruginosa , with gold nanorods. Nano Lett
8:302
183. Dickerson EB, Dreaden EC, Huang X, El-Sayed IH, Chu H, Pushpanketh S, McDonald JF,
El-Sayed MA (2008) Gold nanorod assisted near-infrared plasmonic photothermal therapy
(PPTT) of squamous cell carcinoma in mice. Cancer Lett 269:57
184. Choi WI, Kim J-Y, Kang C, Byeon CC, Kim YH, Tae G (2011) Tumor regression in vivo by
photothermal therapy based on gold-nanorod-loaded. Functional Nanocarriers. ACS Nano
5:1995
185. Jain PK, Lee KS, El-Sayed IH, El-Sayed MA (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
186. Huang X, Jain PK, El-Sayed IH, El-Sayed MA (2006) Determination of the minimum
temperature required for selective photothermal destruction of cancer cells with the use of
immunotargeted gold nanoparticles. Photochem Photobiol 82:412
187. von Maltzahn G, Park J-H, Agrawal A, Bandaru NK, Das SK, Sailor MJ, Bhatia SN (2009)
Computationally guided photothermal tumor therapy using long-circulating gold nanorod
antennas. Cancer Res 69:3892
188. Dreaden EC, Mackey MA, Huang X, Kang B, El-Sayed MA (2011) Beating cancer in
multiple ways using nanogold. Chem Soc Rev 40:3391
189. Wood BJ, Ramkaransingh JR, Fojo T, Walther MM, Libutti SK (2002) Percutaneous tumor
ablation with radiofrequency. Cancer 94:443
190. Minelli C, Lowe SB, Stevens MM (2010) Engineering nanocomposite materials for cancer
therapy. Small 6:2336
191. Arvizo R, Bhattacharya R, Mukherjee P (2010) Gold nanoparticles: opportunities and
challenges in nanomedicine. Expert Opin Drug Deliv 7:753
192. Hainfeld JF, Slatkin DN, Smilowitz HM (2004) The use of gold nanoparticles to enhance
radiotherapy in mice. Phys Med Biol 49:N309
193. Pradhan AK, Nahar SN, Montenegro M, Yu Y, Zhang HL, Sur C, Mrozik M, Pitzer RM
(2009) Resonant X-ray enhancement of the auger effect in high-Z atoms, molecules, and
nanoparticles: potential biomedical applications. J Phys Chem A 113:12356
Search WWH ::




Custom Search