In-Situ Monitoring of Dissolution and Crystallization Processes of Carbamazepine Using Low-Frequency Raman Spectroscopy and Multivariate Analysis.

IF 1.5 4区 医学 Q4 CHEMISTRY, MEDICINAL
Takayuki Kudo, Haruka Uchida, Mana Yamato, Ryo Ohashi, Vasanthi Palanisamy, Toshiro Fukami
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引用次数: 0

Abstract

Optimization of the manufacturing process based on scientific evidence is essential for quality control of active pharmaceutical ingredients. Real-time monitoring can ensure the production of stable quality crystals in the crystallization process. Raman spectroscopy is an attractive tool for pharmaceutical quality evaluation and process analytical technology because of its ability to analyze samples non-destructively and rapidly. In this study, we attempted to monitor the crystal polymorphs of carbamazepine (CBZ I and CBZ III) during the dissolution and crystallization processes using low-frequency Raman spectroscopy, which can reflect differences in lattice vibrations originating from polymorphs in the scattering peaks. Furthermore, using multivariate analysis of the obtained spectra, we attempted to develop a model that enables the quantification of each polymorph. A partial least squares was performed to build the prediction model. The prediction model was built using a set of 33 calibration samples, and an external set of 12 validation samples was used to evaluate the model. The model presents a good prediction capacity. The quantitative results for the solid amount of carbamazepine in suspension calculated using the model during the dissolution and crystallization process showed results that correlated very well with the particle view results. It is suggested that low-frequency Raman spectroscopy can be used as a useful process analytical technology tool.

利用低频拉曼光谱和多变量分析原位监测卡马西平的溶出和结晶过程。
基于科学证据的生产工艺优化对于有效药物成分的质量控制至关重要。实时监控可以保证结晶过程中生产出质量稳定的晶体。拉曼光谱由于其快速、无损地分析样品的能力而成为药品质量评价和过程分析技术的重要工具。在这项研究中,我们试图利用低频拉曼光谱监测卡马西平(CBZ I和CBZ III)在溶解和结晶过程中的晶体多晶型,这可以反映散射峰中多晶型引起的晶格振动的差异。此外,利用所获得的光谱的多变量分析,我们试图开发一个模型,使每个多态性的量化。采用偏最小二乘法建立预测模型。采用一组33个校准样本建立预测模型,并采用一组12个验证样本对模型进行评价。该模型具有较好的预测能力。利用该模型计算的卡马西平在溶出和结晶过程中悬浮液固相量的定量结果与颗粒观结果具有很好的相关性。低频拉曼光谱可以作为一种有用的过程分析技术工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.20
自引率
5.90%
发文量
132
审稿时长
1.7 months
期刊介绍: The CPB covers various chemical topics in the pharmaceutical and health sciences fields dealing with biologically active compounds, natural products, and medicines, while BPB deals with a wide range of biological topics in the pharmaceutical and health sciences fields including scientific research from basic to clinical studies. For details of their respective scopes, please refer to the submission topic categories below. Topics: Organic chemistry In silico science Inorganic chemistry Pharmacognosy Health statistics Forensic science Biochemistry Pharmacology Pharmaceutical care and science Medicinal chemistry Analytical chemistry Physical pharmacy Natural product chemistry Toxicology Environmental science Molecular and cellular biology Biopharmacy and pharmacokinetics Pharmaceutical education Chemical biology Physical chemistry Pharmaceutical engineering Epidemiology Hygiene Regulatory science Immunology and microbiology Clinical pharmacy Miscellaneous.
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