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Synthesis of Near-Infrared Emitting Gold Nanoclusters for Biological Applications
Published on: March 22, 2020
Gold nanocage assemblies for selective second harmonic generation imaging of cancer cell
Teresa Demeritte1, Zhen Fan, Sudarson Sekhar Sinha
1Department of Chemistry and Biochemistry, Jackson State University, Jackson, MS (USA).
Abstract:
Second harmonic generation (SHG) imaging using near infrared laser light is the key to improving penetration depths, leading to biological understanding. Unfortunately, currently SHG imaging techniques have limited capability due to the poor signal-to-noise ratio, resulting from the low SHG efficiency of available dyes. Targeted tumor imaging over nontargeted tissues is also a challenge that needs to be overcome. Driven by this need, in this study, the development of two-photon SHG imaging of live cancer cell lines selectively by enhancement of the nonlinear optical response of gold nanocage assemblies is reported. Experimental results show that two-photon scattering intensity can be increased by few orders of magnitude by just developing nanoparticle self-assembly. Theoretical modeling indicates that the field enhancement values for the nanocage assemblies can explain, in part, the enhanced nonlinear optical properties. Our experimental data also show that A9 RNA aptamer conjugated gold nanocage assemblies can be used for targeted SHG imaging of the LNCaP prostate cancer cell line. Experimental results with the HaCaT normal skin cell lines show that bioconjugated nanocage-based assemblies demonstrate SHG imaging that is highly selective and will be able to distinguish targeted cancer cell lines from other nontargeted cell types. After optimization, this reported SHG imaging assay could have considerable application for biology.
Insights
Researchers developed a new method for targeted cancer imaging using gold nanocage assemblies. This technique significantly enhances signal-to-noise ratio for clearer second harmonic generation (SHG) imaging in biological samples.
Area of Science:
- Biomedical Optics
- Nanotechnology
- Cancer Imaging
Background:
- Second harmonic generation (SHG) imaging offers deep tissue penetration for biological studies but is limited by low signal-to-noise ratios due to inefficient dyes.
- Targeted tumor visualization remains a challenge in current SHG imaging techniques.
Purpose of the Study:
- To develop enhanced two-photon SHG imaging for selective visualization of live cancer cell lines.
- To improve nonlinear optical responses using gold nanocage assemblies for superior imaging.
Main Methods:
- Fabrication and self-assembly of gold nanocage nanoparticles.
- Conjugation of A9 RNA aptamers to gold nanocage assemblies for targeted delivery.
- Two-photon SHG imaging experiments on cancer (LNCaP) and normal (HaCaT) cell lines.
Main Results:
- Gold nanocage assemblies increased two-photon scattering intensity by several orders of magnitude.
- Theoretical modeling supported enhanced nonlinear optical properties due to field enhancement in nanocage assemblies.
- Aptamer-conjugated nanocage assemblies demonstrated highly selective SHG imaging of prostate cancer cells, distinguishing them from normal cells.
Conclusions:
- Gold nanocage assemblies significantly enhance SHG imaging capabilities.
- Aptamer-conjugated nanocage assemblies enable selective and targeted cancer cell imaging.
- This optimized SHG imaging assay holds promise for significant biological and clinical applications.

