Ultra-Small and Metabolizable Near-Infrared Au/Gd Nanoclusters for Targeted FL/MRI Imaging and Cancer Theranostics
Tumor accurate imaging can effectively guide tumor resection and accurate follow-up targeted therapy. The development of imaging-stable, safe, and metabolizable contrast agents is key to accurate tumor imaging. Herein, ultra-small and metabolizable dual-mode imaging probe Au/Gd@FA NCs is rationally engineered by a simple hydrothermal method to achieve accurate FL/MRI imaging of tumors. The probes exhibit ultra-small size (2.5–3.0 nm), near-infrared fluorescence (690 nm), high quantum yield (4.4%), and a better T1 nuclear magnetic signal compared to commercial MRI contrast agents. By modifying the folic acid (FA) molecules, the uptake and targeting of the probes are effectively improved, enabling specific fluorescence imaging of breast cancer. Au/Gd@FA NCs with good biosafety were found to be excreted in the feces after imaging without affecting the normal physiological metabolism of mice. Intracellular reactive oxygen species (ROS) increased significantly after incubation of Au/Gd@FA NCs with tumor cells under 660 nm laser irradiation, indicating that Au/Gd@FA NCs can promote intracellular ROS production and effectively induce cell apoptosis. Thus, metabolizable Au/Gd@FA NCs provide a potential candidate probe for multimodal imaging and tumor diagnosis in clinical basic research. Meanwhile, Au/Gd@FA NCs mediated excessive intracellular production of ROS that could help promote tumor cell death.
Top-30
Journals
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ACS Applied Nano Materials
1 publication, 10%
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International Journal of Nanomedicine
1 publication, 10%
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Biomacromolecules
1 publication, 10%
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TrAC - Trends in Analytical Chemistry
1 publication, 10%
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ACS Biomaterials Science and Engineering
1 publication, 10%
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Russian Chemical Reviews
1 publication, 10%
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Military Medical Research
1 publication, 10%
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Advanced Functional Materials
1 publication, 10%
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Bioorganic Chemistry
1 publication, 10%
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Pharmacology and Therapeutics
1 publication, 10%
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1
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Publishers
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3
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American Chemical Society (ACS)
3 publications, 30%
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Elsevier
3 publications, 30%
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Taylor & Francis
1 publication, 10%
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Autonomous Non-profit Organization Editorial Board of the journal Uspekhi Khimii
1 publication, 10%
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Springer Nature
1 publication, 10%
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Wiley
1 publication, 10%
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- We do not take into account publications without a DOI.
- Statistics recalculated weekly.