Department of Mechanical and Nuclear Engineering, Virginia Commonwealth University, Richmond, Virginia, USA.
Department of Pharmaceutics, Virginia Commonwealth University, Richmond, Virginia, USA.
J Aerosol Med Pulm Drug Deliv. 2022 Aug;35(4):196-211. doi: 10.1089/jamp.2021.0057. Epub 2022 Feb 14.
An infant air-jet dry powder inhaler (DPI) platform has recently been developed that in combination with highly dispersible spray-dried powder formulations can achieve high-efficiency aerosolization with low actuation air volumes. The objective of this study was to investigate modifications to the nasal interface section of this platform to improve the aerosol delivery performance through preterm nose-throat (NT) models. Aerosol delivery performance of multiple nasal interface flow pathways and prong configurations was assessed with two preterm infant NT models. Two excipient-enhanced growth (EEG) dry powder formulations were explored containing either l-leucine or trileucine as the dispersion enhancer. Performance metrics included aerosol depositional loss in the nasal interface, deposition in the NT models, and tracheal filter deposition, which was used to estimate lung delivery efficiency. The best performing nasal interface replaced the straight flexible prong of the original gradual expansion design with a rigid curved prong (∼20° curvature). The prong modification increased the lung delivery efficiency by 5%-10% (absolute difference) depending on the powder formulation. Adding a metal mesh to the flow pathway, to dissipate the turbulent jet, also improved lung delivery efficiency by ∼5%, while reducing the NT depositional loss by a factor of over twofold compared with the original nasal interface. The platform was also found to perform similarly in two different preterm NT models, with no statistically significant difference between any of the performance metrics. Modifications to the nasal interface of an infant air-jet DPI improved the aerosol delivery through multiple infant NT models, providing up to an additional 10% lung delivery efficiency (absolute difference) with the lead design delivering ∼57% of the loaded dose to the tracheal filter, while performance in two unique preterm airway geometries remained similar.
一种婴儿空气射流干粉吸入器(DPI)平台最近已经开发出来,该平台与高分散喷雾干燥粉末制剂结合使用,可以通过低驱动空气量实现高效气溶胶化。本研究的目的是研究对该平台的鼻接口部分进行改进,以通过早产儿鼻-喉(NT)模型来提高气溶胶输送性能。使用两个早产儿 NT 模型评估了多个鼻接口流路和叉头配置的气溶胶输送性能。探索了两种赋形剂增强生长(EEG)干粉制剂,其中含有亮氨酸或三亮氨酸作为分散增强剂。性能指标包括鼻接口处的气溶胶沉积损失、NT 模型中的沉积和气管过滤器沉积,这用于估计肺部输送效率。表现最佳的鼻接口用刚性弯曲叉头(约 20°曲率)替代了原始渐扩设计的直式弹性叉头,从而提高了 5%-10%(绝对差异)的肺部输送效率,具体取决于粉末制剂。在流路中添加金属网以消散湍流射流也提高了 5%的肺部输送效率,同时与原始鼻接口相比,NT 沉积损失降低了两倍以上。该平台在两个不同的早产儿 NT 模型中也表现出相似的性能,任何性能指标之间均无统计学差异。对婴儿空气射流 DPI 的鼻接口进行的改进改善了通过多个婴儿 NT 模型的气溶胶输送,使主导设计将约 57%的加载剂量输送到气管过滤器的情况下,额外提高了 10%的肺部输送效率(绝对差异),而在两个独特的早产儿气道几何形状中的性能仍然相似。