JOURNAL ARTICLE

Targeted Gold Nanoparticles Enable Molecular CT Imaging of Cancer

Abstract

X-ray based computed tomography (CT) is among the most convenient imaging/diagnostic tools in hospitals today in terms of availability, efficiency, and cost. However, in contrast to magnetic resonance imaging (MRI) and various nuclear medicine imaging modalities, CT is not considered a molecular imaging modality since targeted and molecularly specific contrast agents have not yet been developed. Here we describe a targeted molecular imaging platform that enables, for the first time, cancer detection at the cellular and molecular level with standard clinical CT. The method is based on gold nanoprobes that selectively and sensitively target tumor selective antigens while inducing distinct contrast in CT imaging (increased X-ray attenuation). We present an in vitro proof of principle demonstration for head and neck cancer, showing that the attenuation coefficient for the molecularly targeted cells is over 5 times higher than for identical but untargeted cancer cells or for normal cells. We expect this novel imaging tool to lead to significant improvements in cancer therapy due to earlier detection, accurate staging, and microtumor identification.

Keywords:
Molecular imaging Magnetic resonance imaging Cancer imaging Cancer Colloidal gold Modality (human–computer interaction) Medical imaging Cancer detection Medicine Materials science Nuclear medicine Biomedical engineering Radiology Nanotechnology Nanoparticle In vivo Computer science Artificial intelligence Biology

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776
Cited By
23.94
FWCI (Field Weighted Citation Impact)
34
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1.00
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Citation History

Topics

Nanoplatforms for cancer theranostics
Physical Sciences →  Engineering →  Biomedical Engineering
Nanoparticle-Based Drug Delivery
Physical Sciences →  Materials Science →  Biomaterials
Radiation Therapy and Dosimetry
Health Sciences →  Medicine →  Pulmonary and Respiratory Medicine
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