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Influence of batch cooling crystallization on mannitol physical properties and drug dispersion from dry powder inhalers

机译:分批冷却结晶对干粉吸入器中甘露醇物理性质和药物分散的影响

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This study provides, for the first time, an evaluation of the physicochemical properties of batch cooling crystallized mannitol particles combined with how these properties correlated with the inhalation performance from a dry powder inhaler (Aerolizer). The results showed that the type of polymorph changed from β-form (commercial mannitol) to mixtures of β- + δ-mannitol (cooling crystallized mannitol crystals). In comparison to mannitol particles, crystallized at a higher supersaturation degree, a lower degree of supersaturation favored the formation of mannitol crystals with a more regular and elongated habit, smoother surface, higher specific surface area, higher fine particle content, higher bulk density, and higher tap density. Cooling crystallized mannitol particles demonstrated considerably lower salbutamol sulfate-mannitol adhesion in comparison to commercial mannitol, with a linear reduction as surface roughness decreased and fines content increased. Also, mannitol crystals with smoother surfaces demonstrated a reduction in salbutamol sulfate content uniformity (expressed as %CV) within salbutamol sulfate-mannitol formulations. Despite the different physical properties, all mannitol products showed similar flow properties and similar emission of salbutamol sulfate upon inhalation. However, mannitol crystals grown from lower supersaturation (reduced roughness and increased fines) generated a finer aerodynamic size distribution and consequently deposited higher amounts of salbutamol sulfate on lower stages of the impactor. Regression analysis indicated linear relationships showing higher fine particle fraction of salbutamol sulfate in the case of mannitol particles having a more elongated shape, higher fines content, higher specific surface area, higher bulk density, and higher tap density. In conclusion, a cooling crystallization technique could be controlled to produce mannitol particles with controlled physical properties that could be used to influence aerosolization performance of a dry powder inhaler product.
机译:这项研究首次提供了对分批冷却的结晶甘露醇颗粒的理化性质的评估,并结合了这些性质与干粉吸入器(Aerolizer)的吸入性能之间的关系。结果表明,多晶型物的类型从β型(商业甘露醇)变为β-+δ-甘露醇的混合物(冷却结晶的甘露醇晶体)。与以较高的过饱和度结晶的甘露醇颗粒相比,较低的过饱和度有利于形成具有更规则和细长的习性,更光滑的表面,更高的比表面积,更高的细颗粒含量,更高的堆积密度和更高的甘露醇晶体。更高的振实密度。与市售甘露醇相比,冷却的结晶甘露醇颗粒表现出相当低的硫酸沙丁胺醇-甘露醇粘附性,随着表面粗糙度的降低和细粉含量的增加而线性降低。同样,具有更光滑表面的甘露醇晶体证明在硫酸沙丁胺醇-甘露醇制剂中硫酸沙丁胺醇含量均匀性降低(表示为%CV)。尽管有不同的物理特性,但所有甘露醇产品在吸入时均表现出相似的流动特性和硫酸沙丁胺醇的排放。但是,从较低的过饱和度(降低的粗糙度和增加的细度)中生长的甘露醇晶体产生了更精细的空气动力学尺寸分布,因此在冲击器的较低级沉积了更多的硫酸沙丁胺醇。回归分析表明线性关系显示,在甘露醇颗粒具有更细长的形状,更高的细粉含量,更高的比表面积,更高的堆积密度和更高的振实密度的情况下,硫酸沙丁胺醇硫酸盐的更高细颗粒分数。总之,可以控制冷却结晶技术来生产具有可控物理性能的甘露醇颗粒,该颗粒可用于影响干粉吸入器产品的雾化性能。

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