4.8 Article

A Plasmonic Gold Nanostar Theranostic Probe for In Vivo Tumor Imaging and Photothermal Therapy

期刊

THERANOSTICS
卷 5, 期 9, 页码 946-960

出版社

IVYSPRING INT PUBL
DOI: 10.7150/thno.11974

关键词

Gold nanostars; photothermal therapy; nanoparticles; tumor imaging; SERS; CT; biodistribution; theranostics

资金

  1. Duke University Exploratory Research Fund
  2. Duke Center for In Vivo Microscopy, an NIH/NIBIB National Biomedical Technology Resource Center [P41 EB015897]
  3. Kathleen Zielek fellowship from the Chemistry Department of Duke University
  4. AHA Predoctoral Fellowship [14PRE20110008]
  5. National Cancer Institute of the National Institutes of Health [F30 CA177220]
  6. Medical Scientist Training Grant [T32 GM007171]
  7. Defense Advanced Research Projects Agency [HR0011-13-2-0003]
  8. NATIONAL CANCER INSTITUTE [F30CA177220] Funding Source: NIH RePORTER
  9. NATIONAL INSTITUTE OF BIOMEDICAL IMAGING AND BIOENGINEERING [P41EB015897] Funding Source: NIH RePORTER
  10. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [T32GM007171] Funding Source: NIH RePORTER

向作者/读者索取更多资源

Nanomedicine has attracted increasing attention in recent years, because it offers great promise to provide personalized diagnostics and therapy with improved treatment efficacy and specificity. In this study, we developed a gold nanostar (GNS) probe for multi-modality theranostics including surface-enhanced Raman scattering (SERS) detection, x-ray computed tomography (CT), two-photon luminescence (TPL) imaging, and photothermal therapy (PTT). We performed radiolabeling, as well as CT and optical imaging, to investigate the GNS probe's biodistribution and intratumoral uptake at both macroscopic and microscopic scales. We also characterized the performance of the GNS nanoprobe for in vitro photothermal heating and in vivo photothermal ablation of primary sarcomas in mice. The results showed that 30-nm GNS have higher tumor uptake, as well as deeper penetration into tumor interstitial space compared to 60-nm GNS. In addition, we found that a higher injection dose of GNS can increase the percentage of tumor uptake. We also demonstrated the GNS probe's superior photothermal conversion efficiency with a highly concentrated heating effect due to a tip-enhanced plasmonic effect. In vivo photothermal therapy with a near-infrared (NIR) laser under the maximum permissible exposure (MPE) led to ablation of aggressive tumors containing GNS, but had no effect in the absence of GNS. This multifunctional GNS probe has the potential to be used for in vivo biosensing, preoperative CT imaging, intraoperative detection with optical methods (SERS and TPL), as well as image-guided photothermal therapy.

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