Sisco J M, Stella V J
Department of Pharmaceutical Chemistry, University of Kansas, Lawrence 66045.
Pharm Res. 1992 Aug;9(8):1076-82. doi: 10.1023/a:1015818931062.
The hydrolysis of ICRF-187 and two model compounds, 4-methylpiperazine-2,6-dione (4-MP) and 3-methylglutarimide (3-MG), was investigated over the neutral to alkaline pH range at 25 degrees C and an ionic strength of 0.5 (sodium chloride). The purpose of the study was to correlate the influence of molecular changes to the reactivity of these imides. Additionally, an improved chromatographic resolution of all the components of the degradation and NMR confirmation of the identity of the degradation products are presented. Based on the study of 4-MP, which is essentially half of an ICRF-187 molecule, and 3-MG, which has a carbon in place of the piperazine nitrogen, several conclusions can be drawn with regard to the stability of ICRF-187. The tertiary piperazine nitrogen/s of 4-MP and ICRF-187 contributed to the base-catalyzed hydrolysis of these compounds above pH 7 and caused a significant decrease in the pKa values of the imide moiety of ICRF-187 and 4-MP compared with 3-MG. One 2,6-piperazinedione ring of ICRF-187 was shown to affect only minimally the rate of hydrolysis of the second ring. ICRF-187 hydrolyzes by parallel consecutive pathways forming two monoacids with one ring opened and, subsequently, the diacid with both rings hydrolyzed.
在25℃、离子强度为0.5(氯化钠)的条件下,研究了ICRF-187以及两种模型化合物4-甲基哌嗪-2,6-二酮(4-MP)和3-甲基戊二酰亚胺(3-MG)在中性至碱性pH范围内的水解情况。该研究的目的是将分子变化的影响与这些酰亚胺的反应活性相关联。此外,还展示了降解所有组分的色谱分辨率的提高以及降解产物身份的核磁共振确认。基于对4-MP(本质上是ICRF-187分子的一半)和3-MG(用一个碳原子取代了哌嗪氮)的研究,可以就ICRF-187的稳定性得出几个结论。4-MP和ICRF-187的叔哌嗪氮在pH高于7时促进了这些化合物的碱催化水解,并导致ICRF-187和4-MP的酰亚胺部分的pKa值与3-MG相比显著降低。ICRF-187的一个2,6-哌嗪二酮环对第二个环的水解速率影响极小。ICRF-187通过平行连续途径水解,形成一个环打开的两种单酸,随后形成两个环都水解的二酸。