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Pharmaceutical Studies on Hydrates of AM-715 : Physical Characteristics and Intestinal Absorption

Ryuzo Yuasa, Jun Imai, Hiroshi Morikawa, Hisao Kusajima, Hiroshi Uchida, Tsutomu Irikura

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Abstract

The presence of three kinds of hydrates of AM-715 (1-ethyl-6-fluoro-1, 4-dihydro-4-oxo-7-(1-piperazinyl)-3-quinolinecarboxylic acid) was confirmed by elemental analysis, Karl-Fischer method, thermogravimetric analysis, differential scanning calorimetry, infrared spectroscopy, and X-ray diffractometry. Anhydrous AM-715 was not hygroscopic under less than 36% of relative humidity, but easily transformed to 5/2-hydrate over 62-78% of relative humidity and 5-hydrate above 94% of relative humidity, at 40°C. Anhydrous AM-715 was transformed to 5/2-hydrate with the first-order kinetics and 5/2-hydrate was dehydrated according to the first-order kinetics with an activation energy of dehydration of 22 kcal/mol. The 5/2-hydrate was converted to 5-hydrate much slowly than anhydrous AM-715. Dissolution rates were determined in water by using tape procedure, showing a slight difference between anhydrous AM-715 and its hydrates. In order to determine the effect of hydration on bioavailability, the serum levels in dogs were measured after oral administration. There were no significant differences among bioavailability of anhydrous AM-715, its 5/2-hydrate and 5-hydrate.

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The presence of three kinds of hydrates of AM-715 (1-ethyl-6-fluoro-1, 4-dihydro-4-oxo-7-(1-piperazinyl)-3-quinolinecarboxylic acid) was confirmed by elemental analysis, Karl-Fischer method, thermogravimetric analysis, differential scanning calorimetry, infrared spectroscopy, and X-ray diffractometry. Anhydrous AM-715 was not hygroscopic under less than 36% of relative humidity, but easily transformed to 5/2-hydrate over 62-78% of relative humidity and 5-hydrate above 94% of relative humidity, at 40°C. Anhydrous AM-715 was transformed to 5/2-hydrate with the first-order kinetics and 5/2-hydrate was dehydrated according to the first-order kinetics with an activation energy of dehydration of 22 kcal/mol. The 5/2-hydrate was converted to 5-hydrate much slowly than anhydrous AM-715. Dissolution rates were determined in water by using tape procedure, showing a slight difference between anhydrous AM-715 and its hydrates. In order to determine the effect of hydration on bioavailability, the serum levels in dogs were measured after oral administration. There were no significant differences among bioavailability of anhydrous AM-715, its 5/2-hydrate and 5-hydrate.

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Available abstract

The presence of three kinds of hydrates of AM-715 (1-ethyl-6-fluoro-1, 4-dihydro-4-oxo-7-(1-piperazinyl)-3-quinolinecarboxylic acid) was confirmed by elemental analysis, Karl-Fischer method, thermogravimetric analysis, differential scanning calorimetry, infrared spectroscopy, and X-ray diffractometry. Anhydrous AM-715 was not hygroscopic under less than 36% of relative humidity, but easily transformed to 5/2-hydrate over 62-78% of relative humidity and 5-hydrate above 94% of relative humidity, at 40°C. Anhydrous AM-715 was transformed to 5/2-hydrate with the first-order kinetics and 5/2-hydrate was dehydrated according to the first-order kinetics with an activation energy of dehydration of 22 kcal/mol. The 5/2-hydrate was converted to 5-hydrate much slowly than anhydrous AM-715. Dissolution rates were determined in water by using tape procedure, showing a slight difference between anhydrous AM-715 and its hydrates. In order to determine the effect of hydration on bioavailability, the serum levels in dogs were measured after oral administration. There were no significant differences among bioavailability of anhydrous AM-715, its 5/2-hydrate and 5-hydrate.

Key concepts: Anhydrous, Hydrate, Chemistry, Relative humidity, Thermogravimetric analysis, Differential scanning calorimetry, Bioavailability, Dissolution

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