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Implementation of a Process Analytical Technology System in a Freeze-Drying Process Using Raman Spectroscopy for In-Line Process Monitoring

机译:冷冻干燥过程中使用拉曼光谱进行在线过程监控的过程分析技术系统的实现

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The aim of the present study was to propose a strategyfor the implementation of a Process Analytical Technology system in freeze-drying processes. Mannitol solutions, some of them supplied with NaCl, were used as models to freeze-dry. Noninvasive and in-line Raman measurements were continuously performed during lyophilization of the solutions to monitor real time the mannitol solid state, the end points of the different process steps (freezing, primary drying, secondary drying), and physical phenomena occurring during the process. At-line near-infrared (NIR) and X-ray powder diffractometry (XRPD) measurements were done to confirm the Raman conclusions and to find out additional information. The collected spectra during the processes were analyzed using principal component analysis and multivariate curve resolution. A two-level full factorial design was used to study the significant influence of process (freezing rate) and formulation variables (concentration of mannitol, concentration of NaCl, volume of freeze-dried sample) upon freeze-drying. Raman spectroscopy was able to monitor (i) the mannitol solid state (amorphous, alpha, beta, delta, and hemihydrate), (ii) several process step end points (end of mannitol crystallization during freezing, primary drying), and (iii) physical phenomena occurring during freeze-drying (onset of ice nucleation, onset of mannitol crystallization during the freezing step, onset of ice sublimation). NIR proved to be a more sensitive tool to monitor sublimation than Raman spectroscopy, while XRPD helped to unravel the mannitol hemihydrate in the samples. The experimental design results showed that several process and formulation variables significantly influence different aspects of lyophilization and that both are interrelated. Raman spectroscopy (in-line) and NIR spectroscopy and XRPD (at-line) not only allowed the real-time monitoring of mannitol freeze-drying processes but also helped (in combination with experimental design) us to understand the process.
机译:本研究的目的是提出一种在冷冻干燥过程中实施过程分析技术系统的策略。甘露醇溶液(其中一些还提供了氯化钠)被用作冷冻干燥的模型。在溶液冻干过程中连续进行无创和在线拉曼测量,以实时监测甘露醇的固态,不同工艺步骤的终点(冷冻,一次干燥,二次干燥)以及过程中发生的物理现象。进行了在线近红外(NIR)和X射线粉末衍射(XRPD)测量,以确认拉曼结论并找出更多信息。使用主成分分析和多元曲线分辨率分析了过程中收集的光谱。采用两级全因子设计来研究工艺(冷冻速率)和配方变量(甘露醇浓度,NaCl浓度,冷冻干燥样品的体积)对冷冻干燥的显着影响。拉曼光谱仪能够监测(i)甘露醇固态(无定形,α,β,δ和半水合物),(ii)几个加工步骤的终点(冷冻,初步干燥过程中甘露醇结晶的终点)和(iii)冻干过程中发生的物理现象(冰成核的开始,冷冻步骤中甘露醇结晶的开始,冰升华的开始)。与拉曼光谱法相比,NIR被证明是监测升华的更灵敏工具,而XRPD有助于解开样品中的甘露醇半水合物。实验设计结果表明,几个工艺和配方变量会显着影响冻干的不同方面,并且两者是相互关联的。拉曼光谱法(在线),近红外光谱法和XRPD(在线)不仅允许对甘露醇冷冻干燥过程进行实时监控,而且还帮助(结合实验设计)了解了该过程。

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