Preparation of Gadolinium-Containing Emulsions Stabilized with Phosphatidylcholine-Surfactant Mixtures for Neutron-Capture Therapy
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概要
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Gadolinium-containing lipid emulsions for neutron-capture therapy were designed to fulfill the following requirements : particle size smaller than 100 nm; gadolinium content as high as possible; surface of the emulsions modified with hydrophilic moieties to provide prolonged circulation in the blood. Emulsions containing soybean oil, water, Gd-diethylenetriaminepentaacetic acid-distearylamide (Gd-DTPA-SA), as an amphiphilic drug, and hydrogenated egg yolk phosphatidylcholine (HEPC), as an emulsifier, in a weight ratio of 7.36 : 92 : 1 : 2 were prepared without co-surfactants by the thin-layer hydration method using a bath-type sonicator. The mean particle size of the emulsions was 280.7 nm. In order to make the droplet size of the emulsions smaller than 100 nm, as well as to modify the emulsion surfaces, a co-surfactant, Tween^<[○!R]> 80,HCO^<[○!R]>-60,Pluronic^<[○!R]> F68,polyoxyethylene alkyl ether (Brij^<[○!R]>) or polyoxyethylene alkyl ester (Myrj^<[○!R]>), was introduced into the standard system. Tween 80,HCO-60,Brij 76,78 and 700 were effective in reducing the particle size to below 100 nm when the co-surfactant weight ratio (CWR), defined as co-surfactant/(HEPC+Gd-DTPA-SA) (w/w), was larger than 0.67; the particle size with Tween 80 and HCO-60 was reduced to 52.7 and 74.7 nm, respectively, at a CWR of 1.0 (w/w). In order to increase the gadolinium content, the weight ratio of Gd-DTPA-SA to HEPC was increased from 1 : 2 of the standard-Gd formulation to 2 : 1 of the high-Gd formulation. The measured particle size of the HCO-60 high-Gd emulsions was 78.7 nm when the CWR was 1.0 (w/w). In this case, the calculated gadolinium content reached 3.0 mg Gd/ml. These results indicate that HCO-60 is an effective co-surfactant not only in terms of particle size reduction but also with respect to gadolinium enrichment.
- 公益社団法人日本薬学会の論文
- 1999-02-15
著者
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市川 秀喜
神戸学院大学薬学部
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市川 秀喜
神戸学院大学薬学部物性薬学部門製剤学研究室 同ライフサイエンス産学連携研究センター
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Hirano Kaoru
Faculty Of Pharmaceutical Sciences Kobe Gakuin University
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AKINE Yasuyuki
Institute of Clinical Medicine,University of Tsukuba
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Akine Y
Institute Of Clinical Medicine University Of Tsukuba
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Akine Yasuyuki
Institute Of Clinical Medicine University Of Tsukuba
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MIYAMOTO Mitsue
Department of Clinical and Biomedical Sciences, Showa Pharmaceutical University
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FUKUMORI Yoshinobu
Faculty of Pharmaceutical Sciences, Kobe-Gakuin University
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福森 義信
神戸学院大学 薬学部
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Fukumori Yoshinobu
Faculty Of Pharmaceutical Sciences Kobe-gakuin University
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Fukumori Yoshinobu
Faculty Of Pharmaceutical Science Kobe Gakuin University
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ICHIKAWA Hideki
Faculty of Pharmaceutical Sciences and Cooperative Research Center of Life Sciences, Kobe Gakuin Uni
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Ichikawa Hideki
Department Of Physical Pharmacy Kobe Gakuin University
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Ichikawa Hideki
Faculty Of Pharmaceutical Science Kobe Gakuin University
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Tokuuye Koichi
Department Of Radiation Therapy The National Cancer Hospital
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MIYAMOTO Masahito
Faculty of Pharmaceutical Sciences, Kobe Gakuin University
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TOKUUYE Koichi
The National Cancer Center Hospital
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Miyamoto Masahito
Faculty Of Pharmaceutical Sciences Kobe Gakuin University
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Fukumori Yoshinobu
Department Of Physical Pharmacy Kobe Gakuin University
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Miyamoto M
Department Of Biochemistry Faculty Of Pharmaceutical Sciences Niigata University Of Pharmacy And App
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Hirano K
Kyoto Pharmaceutical University
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Miyamoto M
Department Of Clinical And Biomedical Sciences Showa Pharmaceutical University
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