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Computationally Guided Photothermal Tumor Therapy Using Long-Circulating Gold Nanorod Antennas

Cancer Research · 2009 · Vol. 69(9) · pp. 3892–3900
Geoffrey von MaltzahnJi‐Ho ParkAmit AgrawalNanda Kishor BandaruSarit K. DasMichael J. SailorSangeeta N. Bhatia

Abstract

Plasmonic nanomaterials have the opportunity to considerably improve the specificity of cancer ablation by i.v. homing to tumors and acting as antennas for accepting externally applied energy. Here, we describe an integrated approach to improved plasmonic therapy composed of multimodal nanomaterial optimization and computational irradiation protocol development. We synthesized polyethylene glycol (PEG)-protected gold nanorods (NR) that exhibit superior spectral bandwidth, photothermal heat generation per gram of gold, and circulation half-life in vivo (t(1/2), approximately 17 hours) compared with the prototypical tunable plasmonic particles, gold nanoshells, as well as approximately 2-fold higher X-ray absorption than a clinical iodine contrast agent. After intratumoral or i.v. administration, we fuse PEG-NR biodistribution data derived via noninvasive X-ray computed tomography or ex vivo spectrometry, respectively, with four-dimensional computational heat transport modeling to predict photothermal heating during irradiation. In computationally driven pilot therapeutic studies, we show that a single i.v. injection of PEG-NRs enabled destruction of all irradiated human xenograft tumors in mice. These studies highlight the potential of integrating computational therapy design with nanotherapeutic development for ultraselective tumor ablation.

Nanoplatforms for cancer theranosticsGold and Silver Nanoparticles Synthesis and ApplicationsExtracellular vesicles in diseasePhotothermal therapyBiodistributionMaterials scienceEx vivoNanoshellIn vivoNanorodPlasmonNanotechnologyBiomedical engineering

MeSH terms

AnimalsBreast NeoplasmsGoldHumansHyperthermia, InducedMice, NudePolyethylene GlycolsTissue DistributionTomography, X-Ray ComputedSpectroscopy, Near-InfraredSurface Plasmon ResonanceXenograft Model Antitumor AssaysNanotubesCell Line, TumorMice

Funding

  • National Science Foundation
  • Rice University
  • National Institutes of Health
  • U.S. Food and Drug Administration
  • National Cancer Institute
Citations
1,040
FWCI
49.51
field-weighted impact
References
35
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100%
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References
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Journal of Controlled Release · 2006 · 1,186 citations
Cancer Cell Imaging and Photothermal Therapy in the Near-Infrared Region by Using Gold Nanorods
Journal of the American Chemical Society · 2006 · 5,354 citations
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