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Near infrared spectroscopy for rapid and in-line detection of particle size distribution variability in lactose during mixing

机译:混合过程中乳糖中粒度分布变异性快速和在线检测的近红外光谱法

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摘要

Particle size distribution (PSD) variability in excipients may cause unacceptable prolongation of mixing time needed to achieve blend homogeneity. Therefore, it is vital to modulate mixing through real-time monitoring of PSD variability. Notwithstanding the criticality of PSD variability, real-time measurement of PSD during mixing is relatively unexplored; and this is the focus of the present study. The model excipient was commercial grade lactose with modified PSD that conformed to the manufacturer's specifications. It was mixed with micro-crystalline cellulose and chlorpheniramine in a double-cone blender. High and low dose blends were prepared and near infrared spectroscopy (NIRS) was used to collect spectral data, during mixing, for chemometric modelling of PSD. Four modelling approaches based on partial least squares regression (PLSR) were applied. The models were highly interpretable and rapidly measured PSD near the beginning of mixing (5th to 6th rotation), with accuracy (relative standard error of prediction < 5.0%, r(2) approximate to 1.00, slope approximate to 1.00). Therefore, NIR chemo-metric modelling is a viable strategy to detect variability in PSD of excipients during blending and could enable real-time control of mixing. Most significantly, this strategy is potentially transferable to the monitoring and controlling of batch and continuous processes, where PSD is either a source of process variability or a critical quality attribute.
机译:粒度分布(PSD)赋形剂的可变性可能导致实现混合均匀性所需的混合时间的不可接受的延长。因此,通过对PSD可变性的实时监测调节混合至关重要。尽管PSD可变性的临界性,但混合过程中PSD的实时测量相对未探索;这是本研究的重点。模型赋形剂是商业级乳糖,具有改进的PSD,符合制造商的规格。将其与微晶纤维素混合在双锥搅拌器中。制备高低剂量混合物,并在混合过程中使用近红外光谱(NIR)来收集光谱数据,用于PSD的化学计量建模。应用了基于偏最小二乘回归(PLSR)的四种建模方法。该模型是高度可解释的,并在混合开始(第5到第6次旋转)的开始附近快速测量PSD,精度(预测的相对标准误差<5.0%,R(2)近似为1.00,斜坡近似为1.00)。因此,NIR Chemo-Comeno-urd造型是一种可行的策略,可以在混合过程中检测赋形剂PSD的可变性,并且可以实现混合的实时控制。最重要的是,这种策略可能会转移到对批处理和连续过程的监测和控制,其中PSD是过程变异性或关键质量属性的源。

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