首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Performance of Combination Drug and Hygroscopic ExciplentSubmkrometer Particles from a Softmist Inhalertir a CharacteristicModel of the Airways -
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Performance of Combination Drug and Hygroscopic ExciplentSubmkrometer Particles from a Softmist Inhalertir a CharacteristicModel of the Airways -

机译:Softmist Inhalertir的组合药物和吸湿性辅助亚克分子计颗粒的性能-气道特征模型-

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摘要

Excipient enhanced growth (EEG) of inhaled submicrometer pharmaceutical aerosols is a recently proposed method intended to significantly reduce extrathoracic deposition and improve lung delivery. The objective of this study was to evaluate the size increase of combination drug and hygroscopic excipient particles in a characteristic model of the airways during inhalation using both in vitro experiments and computational fluid dynamic (CFD) simulations. The airway model included a characteristic mouth-throat (MT) and upper tracheobronchial (TB) region through the third bifurcation and was enclosed in a chamber geometry used to simulate the thermodynamic conditions of the lungs. Both in vitro results and CFD simulations were in close agreement and indicated that EEG delivery of combination submicrometer particles could nearly eliminate MT deposition for inhaled pharmaceutical aerosols. Compared with current inhalers, the proposed delivery approach represents a 1-2 order of magnitude reduction in MT deposition. Transient inhalation was found to influence the final size of the aerosol based on changes in residence times and relative humidity values. Aerosol sizes following EEG when exiting the chamber (2.75-4.61 mum) for all cases of initial submicrometer combination particles were equivalent to or larger than many conventional pharmaceutical aerosols that frequently have MMADs in the range of 2-3 mum.
机译:吸入亚微米级药物气雾剂的赋形剂增强生长(EEG)是最近提出的一种旨在显着减少胸腔外沉积并改善肺部递送的方法。这项研究的目的是使用体外实验和计算流体力学(CFD)模拟来评估吸入过程中气道特征模型中组合药物和吸湿性赋形剂颗粒的尺寸增加。气道模型包括通过第三分叉处的特征性咽喉(MT)和气管支气管上(TB)区域,并被封闭在用于模拟肺部热力学条件的腔室几何结构中。体外结果和CFD模拟都非常吻合,表明组合亚微米颗粒的EEG输送几乎可以消除吸入式药物气雾剂的MT沉积。与目前的吸入器相比,建议的输送方法代表MT沉积量降低1-2个数量级。根据停留时间和相对湿度值的变化,发现瞬时吸入会影响气雾剂的最终尺寸。对于所有初始亚微米级组合颗粒,在离开腔室后,EEG后面的气溶胶尺寸(2.75-4.61微米)等于或大于许多常规的常规MMAD在2-3微米范围内的药用气雾剂。

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