Pisklak Dariusz Maciej, Zielińska-Pisklak Monika, Szeleszczuk Łukasz, Wawer Iwona
Faculty of Pharmacy, Medical University of Warsaw, Department of Physical Chemistry, Banacha 1, 02-093 Warsaw, Poland.
Faculty of Pharmacy, Medical University of Warsaw, Department of Inorganic and Analytical Chemistry, Banacha 1, 02-093 Warsaw, Poland.
J Pharm Biomed Anal. 2016 Apr 15;122:29-34. doi: 10.1016/j.jpba.2016.01.030. Epub 2016 Jan 16.
Excipients used in the solid drug formulations differ in their NMR relaxation and (13)C cross-polarization (CP) kinetics parameters. Therefore, experimental parameters like contact time of cross-polarization and repetition time have a major impact on the registered solid state NMR spectra and in consequence on the results of the NMR analysis. In this work the CP kinetics and relaxation of the most common pharmaceutical excipients: anhydrous α-lactose, α-lactose monohydrate, mannitol, sucrose, sorbitol, sodium starch glycolate type A and B, starch of different origin, microcrystalline cellulose, hypromellose, ethylcellulose, methylcellulose, hydroxyethylcellulose, sodium alginate, magnesium stearate, sodium laurilsulfate and Kollidon(®) were analyzed. The studied excipients differ significantly in their optimum repetition time (from 5 s to 1200 s) and T(1ρ)(I) parameters (from 2 ms to 73 ms). The practical use of those differences in the excipients composition analysis was demonstrated on the example of commercially available tablets containing indapamide as an API. The information presented in this article will help to choose the correct acquisition parameters and also will save the time and effort needed for their optimization in the NMR analysis of the solid drug formulations.
固体药物制剂中使用的辅料在其核磁共振弛豫和(13)C交叉极化(CP)动力学参数方面存在差异。因此,诸如交叉极化接触时间和重复时间等实验参数对记录的固态核磁共振谱有重大影响,进而对核磁共振分析结果产生影响。在这项工作中,对最常见的药用辅料的CP动力学和弛豫进行了分析,这些辅料包括:无水α-乳糖、α-乳糖一水合物、甘露醇、蔗糖、山梨醇、A型和B型淀粉乙醇酸钠、不同来源的淀粉、微晶纤维素、羟丙甲纤维素、乙基纤维素、甲基纤维素、羟乙基纤维素、海藻酸钠、硬脂酸镁、十二烷基硫酸钠和聚乙烯吡咯烷酮(®)。所研究的辅料在其最佳重复时间(从5秒到1200秒)和T(1ρ)(I)参数(从2毫秒到73毫秒)方面存在显著差异。以含有吲达帕胺作为活性成分的市售片剂为例,展示了这些辅料成分分析差异的实际应用。本文提供的信息将有助于选择正确的采集参数,同时也将节省在固体药物制剂核磁共振分析中优化这些参数所需的时间和精力。