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测试不同制药片剂的拉曼高光谱图像的纯光谱分辨率性能。

Testing the performance of pure spectrum resolution from Raman hyperspectral images of differently manufactured pharmaceutical tablets.

机构信息

Department of Organic Chemistry and Technology, Budapest University of Technology and Economics, Budapest, Hungary.

出版信息

Anal Chim Acta. 2012 Jan 27;712:45-55. doi: 10.1016/j.aca.2011.10.065. Epub 2011 Nov 15.

Abstract

Chemical imaging is a rapidly emerging analytical method in pharmaceutical technology. Due to the numerous chemometric solutions available, characterization of pharmaceutical samples with unknown components present has also become possible. This study compares the performance of current state-of-the-art curve resolution methods (multivariate curve resolution-alternating least squares, positive matrix factorization, simplex identification via split augmented Lagrangian and self-modelling mixture analysis) in the estimation of pure component spectra from Raman maps of differently manufactured pharmaceutical tablets. The batches of different technologies differ in the homogeneity level of the active ingredient, thus, the curve resolution methods are tested under different conditions. An empirical approach is shown to determine the number of components present in a sample. The chemometric algorithms are compared regarding the number of detected components, the quality of the resolved spectra and the accuracy of scores (spectral concentrations) compared to those calculated with classical least squares, using the true pure component (reference) spectra. It is demonstrated that using appropriate multivariate methods, Raman chemical imaging can be a useful tool in the non-invasive characterization of unknown (e.g. illegal or counterfeit) pharmaceutical products.

摘要

化学成像技术是制药技术中迅速发展的分析方法。由于存在大量的化学计量学解决方案,现在也可以对具有未知成分的药物样品进行特征描述。本研究比较了当前最先进的曲线分辨率方法(多变量曲线分辨率交替最小二乘法、正矩阵分解、通过分裂增广拉格朗日和自建模混合物分析的单纯形识别)在从不同制造的药物片剂的拉曼图谱中估算纯组分光谱的性能。不同技术的批次在活性成分的均一性水平上有所不同,因此,在不同条件下测试了曲线分辨率方法。显示了一种经验方法来确定样品中存在的组分数量。与使用经典最小二乘法(使用真实的纯组分(参考)光谱)相比,根据检测到的组分数量、分辨率光谱的质量以及得分(光谱浓度)的准确性,对化学计量算法进行了比较。结果表明,使用适当的多元方法,拉曼化学成像可以成为对未知(例如非法或假冒)药物产品进行非侵入性特征描述的有用工具。

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