研究目的
To develop a novel colorimetric plasmonic gel nanocomposite for the detection of therapeutic levels of radiation delivered in electron beam therapy.
研究成果
The plasmonic gel nanocomposites demonstrated a robust linear response in a therapeutically relevant radiation dose range (2–5 Gy) using a simple detection method (absorbance spectroscopy). The system was able to predict the radiation dose administered to anthropomorphic thorax phantoms and demonstrated dose rate independence for detecting clinically relevant doses. The use of a biocompatible hydrogel can facilitate patient-specific dosimetry depending on the patient anatomy.
研究不足
The sensitivity and range of the system may be further improved with the design of novel cationic surfactants and templating agents. The study was limited to the detection of electron doses in the therapeutic window (2–5 Gy).
1:Experimental Design and Method Selection:
The study involved the design of plasmonic gel nanocomposites consisting of an agarose gel matrix encapsulating precursor gold ions, which are reduced to gold nanoparticles upon exposure to high energy electrons. The change in color due to nanoparticle formation was quantified using absorbance spectroscopy.
2:Sample Selection and Data Sources:
The samples were fabricated using agarose gel matrices with varying cationic surfactants (CxTAB, x = 12, 14, and 16) to investigate their response to therapeutic levels of high-energy electrons.
3:List of Experimental Equipment and Materials:
A Varian Truebeam linear accelerator radiation therapy system was used for electron beam irradiation. Absorbance spectra were obtained using a BioTek Synergyt 2 plate reader. Transmission electron microscopy (TEM) was performed using a CM200-FEG instrument.
4:Experimental Procedures and Operational Workflow:
Plasmonic gel nanocomposites were fabricated and exposed to different doses of high-energy electrons. The color change was observed and quantified using absorbance spectroscopy. The effect of different surfactants and the use of glutathione as a quenching agent were investigated.
5:Data Analysis Methods:
Absorbance values at 540 nm were plotted as a function of electron radiation dose to generate a calibration curve. Statistical analyses were performed using Microsoft Excel.
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