研究目的
Investigating the differential photothermal and photodynamic performance behaviors of gold nanorods, nanoshells, and nanocages under identical energy conditions to improve phototherapeutic applications.
研究成果
Au NCs exhibit the highest photodynamic performance and in vivo therapeutic efficacy due to their hollow structure and corner angles, making them promising for cancer phototherapy. Future studies should focus on clinical translations and combination therapies.
研究不足
The study is limited to specific Au nanostructures (NRs, NSs, NCs) and conditions (808 nm laser, CW diode laser). Potential optimizations could include exploring other nanostructure shapes, different laser parameters, and long-term biocompatibility studies.
1:Experimental Design and Method Selection:
The study compared Au NRs, NSs, and NCs with LSPR peaks tuned to 808 nm and same optical density (OD) values. Methods included synthesis, PEGylation, photothermal and photodynamic measurements, FDTD simulations, and in vitro/in vivo assessments.
2:Sample Selection and Data Sources:
Au nanostructures were synthesized using specific methods (e.g., seed-mediated growth for NRs, galvanic replacement for NSs and NCs). Mouse breast carcinoma (4T1) cells and BALB/c mice were used for biological experiments.
3:List of Experimental Equipment and Materials:
Equipment included SpectraMax M5 microplate reader, TEM (FEI Tecnai F20), Malvern Nanosizer ZS, ICP-OES (Thermo Scientific iCAP6300), infrared thermal imager (FLIR), confocal microscope (LSM 700, Carl Zeiss), and others. Materials included HAuCl4·3H2O, CTAB, PVP, mPEG-SH, Cy-7, etc.
4:Experimental Procedures and Operational Workflow:
Synthesis of nanostructures, PEGylation, photothermal measurements with 808 nm laser irradiation, ROS detection using probes (DCF, APF, SOSG, XTT), cellular uptake studies, cytotoxicity assays (MTT, live/dead staining), in vivo biodistribution and tumor regression studies.
5:Data Analysis Methods:
Statistical analysis using Student's t-tests, FDTD simulations for electric field distribution, calculation of photothermal conversion efficiency, and quantification of ROS yields.
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Transmission electron microscopy
Tecnai F20
FEI
Characterizing physicochemical properties of nanostructures
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Nanosizer ZS
ZS
Malvern
Measuring zeta potential and dynamic light scattering
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ICP-OES
iCAP6300
Thermo Scientific
Quantifying Au element concentration
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Confocal microscope
LSM 700
Carl Zeiss
Capturing fluorescent images for cellular studies
ZEISS LSM 990 Spectral Multiplex
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FDTD simulation software
Lumerical Solutions
Lumerical
Calculating electric field distributions of nanostructures
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SpectraMax M5 microplate reader
M5
Molecular Devices
Analyzing optical properties of samples
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Infrared thermal imager
FLIR
Photographing infrared thermal images
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Microplate reader
Costar, Corning
Measuring fluorescence and absorbance in assays
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Laser
808 nm CW diode laser
Irradiating samples for photothermal and photodynamic studies
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