Bristol-Myers Squibb Co., Pharmaceutical Development, New Brunswick, NJ 08903, United States.
J Pharm Biomed Anal. 2013 Dec;86:92-9. doi: 10.1016/j.jpba.2013.08.004. Epub 2013 Aug 14.
Differential Scanning Calorimetry and Raman spectroscopy are both powerful tools used heavily in pharmaceutical development. For many studies such as polymorph characterization these two techniques are complimentary and provide data on different yet important aspects of material properties when combined together. In this work we describe an integrated Raman-DSC technology that simultaneously generates both DSC thermogram and Raman spectra of the pharmaceutical material being studied. The integrated system consists of a DSC with a Raman fiber optic probe inserted right on top of the sample furnace. The technology integrates synchronized Raman acquisition into DSC scan, enabling collection of molecular and structural information coupled with observation of thermal events. We first establish the technology by optimizing the instrumental set-up that offers relatively high-quality results for simultaneous DSC and Raman data collection. We then demonstrate the application of the technology by studying the polymorphs of d-mannitol, a common pharmaceutical excipient and BMS-A, an investigational drug candidate that exhibits multiple coexisting polymorphs. In both cases, the Raman-DSC technology was able to provide valuable information on the process of phase change and polymorph identification. Although similar information may be obtained by using various characterization techniques together, the integrated Raman-DSC indicated special advantages for industrial development such as high efficiency, material sparing and comprehensive data analysis. Moreover the technology provides an alternative to better correlate real-time phase behavior to molecular understanding. The technology thus has the potential to be used for Process Analytical Technology (PAT) purpose.
差示扫描量热法和拉曼光谱都是在药物开发中广泛使用的强大工具。对于许多研究,如多晶型物的表征,这两种技术是互补的,当结合使用时,可以提供有关材料性质不同但重要方面的数据。在这项工作中,我们描述了一种集成的拉曼-差示扫描量热技术,该技术可以同时生成研究中药物材料的差示扫描量热图谱和拉曼光谱。集成系统由一个插入样品炉顶部的带有拉曼光纤探头的差示扫描量热仪组成。该技术将同步拉曼采集集成到差示扫描量热扫描中,从而能够收集分子和结构信息,并观察热事件。我们首先通过优化仪器设置来建立该技术,该设置提供了相对高质量的同步差示扫描量热和拉曼数据采集结果。然后,我们通过研究 d-甘露醇(一种常见的药物赋形剂)和 BMS-A(一种具有多种共存多晶型物的研究性药物候选物)的多晶型物来展示该技术的应用。在这两种情况下,拉曼-差示扫描量热技术都能够提供有关相变和多晶型物鉴定过程的有价值信息。虽然可以通过使用各种表征技术一起获得类似的信息,但集成的拉曼-差示扫描量热技术具有特殊的优势,例如高效率、节约材料和全面的数据分析。此外,该技术为实时相行为与分子理解更好地相关提供了一种替代方法。因此,该技术有可能用于过程分析技术(PAT)目的。