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Effects of water vapor absorption on the physical and chemical stability of amorphous sodium indomethacin

机译:水蒸气吸收对无定形消炎痛钠物理化学稳定性的影响

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摘要

This study reports on the effects that water absorbed into amorphous sodium indomethacin (NaIMC) can have on simultaneous tendencies to crystallize to its trihydrate form and to undergo base-catalyzed hydrolysis because of the plasticizing effects of water on molecular mobility. Measurement of water vapor absorption at 30°C and powder x-ray diffraction patterns as a function of relative humidity (RH) reveal that upon exposure to 21% RH, NaIMC does not crystallize over a 2-month period. Measurements of the glass transition temperature as a function of such exposure reveals a change in Tg from 121°C, dry, to 53°C at 21% RH, such that Tg at 21% RH is ≈13°C above the highest storage temperature of 40°C used in the study. At 56% RH and higher, however, crystallization to the trihydrate occurs rapidly; although over the 2-month period, crystallization was never complete. Assessment of chemical degradation by high-performance liquid chromatography analysis revealed significant instability at 21% RH; whereas at higher RH, the extent of chemical degradation was reduced, reflecting the greater crystallization to the more chemically stable crystalline form. It is concluded that when amorphous forms of salts occur in solid dosage forms, the simultaneous effects of enhanced water vapor sorption on crystallization and chemical degradation must be considered, particularly when assessing solid-state chemical degradation at higher temperatures and RH (eg, 40°C 75% RH).
机译:这项研究报告了吸收到无定形消炎痛钠(NaIMC)中的水可能同时结晶为三水合物形式并由于水对分子迁移性的增塑作用而发生碱催化水解的作用。测量在30°C下的水蒸气吸收率以及粉末X射线衍射图作为相对湿度(RH)的函数表明,暴露于21%RH后,NaIMC在2个月内不会结晶。通过测量玻璃化转变温度作为暴露的函数,可以发现在21%RH时,Tg从干燥的121°C变为53°C,因此在21%RH时,Tg比最高储存温度高≈13°C。研究中使用的40°C温度但是,在相对湿度为56%和更高的条件下,迅速生成三水合物的结晶。尽管在2个月的时间内,结晶从未完成。通过高效液相色谱分析对化学降解进行评估,结果表明在21%相对湿度下存在明显的不稳定性;而在较高的相对湿度下,化学降解的程度降低了,这反映出更大的结晶为化学上更稳定的晶体形式。结论是,当盐以固体剂型形式出现无定形形式的盐时,必须考虑到水蒸气吸收增强对结晶和化学降解的同时影响,特别是在评估较高温度和相对湿度(例如40°C)下的固态化学降解时C 75%RH)。

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