CRITICAL ANALYSIS OF POWDER FLOW BEHAVIOUR OF DIRECTLY COMPRESSIBLE COPROCESSED EXCIPIENTS

Ilyasu Salim, G. M. Khalid, Abubakar Sadiq Wada, Suleiman Danladi, Fatima Shuaibu Kurfi, Umar Abdurrahman Yola
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Abstract

The aim of this pre-formulation study was to adopt simple linear regression modelling and correlation statistics to understand the associations between pharmacopoeial powder test methods using datasets generated from five commercial brands of directly compressible excipients with a specific focus to inferential implications in formulation design. Powder characterization was conducted using protocols defined in Chapter <1174> and <616> of the United States Pharmacopoeia (USP41-NF36). The study adopted a linear regression modelling analytics and correlation statistics using the fitting algorithm of OriginPro® (OriginPro, Version 2021b, OriginLab Corporation, Northampton, MA, USA). In the results, the modulus of Pearson’s product moment correlation coefficient was used to measure the strength of the linear association between test variables and a correlation matrix generated. Strong positive correlation modulus of Hausner’s Ratio (HR) with Carr’s index (r=+0.999) and static angle of repose (r=+0.932) were evident. Bulk density strongly correlates with tap density in the positive direction (r=+0.911). Tap density also shows a slight negative correlation with HR (r=-0.230), Carr’s index (r=-0.228), and static angle of repose (r==-0.421), while Carr’s index strongly correlated with static angle of repose (r=+0.933). In conclusion, modelling bivariate powder flow datasets has provided a powerful but simplistic statistical relationship for characterizing the modulus of association between HR, Carr’s index, and static angle of repose of the model excipients useful in preformulation design of pharmaceutical formulations.
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直接可压缩共处理辅料粉末流动行为的临界分析
这项制剂前研究的目的是采用简单的线性回归模型和相关统计方法,利用五个商业品牌的直接可压缩辅料数据集来了解药典粉末测试方法之间的关联,重点是推断对制剂设计的影响。粉末表征采用了《美国药典》(USP41-NF36)第章和第章规定的方案。研究采用了线性回归建模分析法,并使用 OriginPro® 的拟合算法进行相关性统计(OriginPro,2021b 版,OriginLab 公司,美国马萨诸塞州北安普顿)。在结果中,使用皮尔逊积矩相关系数模数来衡量测试变量之间线性关联的强度,并生成相关矩阵。豪斯纳比率(HR)与卡尔指数(r=+0.999)和静态休止角(r=+0.932)明显呈强正相关。堆积密度与敲击密度呈强正相关(r=+0.911)。敲击密度还与 HR(r=-0.230)、卡尔指数(r=-0.228)和静态倾角(r==-0.421)略呈负相关,而卡尔指数与静态倾角(r=+0.933)密切相关。总之,二元粉末流动数据集建模为表征模型辅料的 HR、卡尔指数和静态休止角之间的关联模量提供了一种强大但简单的统计关系,有助于药物制剂的制剂前设计。
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