通过干粉吸入器改善肺部药物输送的数值研究:计算机模拟的综述。

IF 4.3 3区 医学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Pharmaceutical Research Pub Date : 2025-08-01 Epub Date: 2025-08-15 DOI:10.1007/s11095-025-03906-3
Salar Salmanipour, Sasan Salmani Pour Avval, Kiao Inthavong, Hamed Hamishehkar
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引用次数: 0

摘要

本文综述了计算流体动力学(CFD)在肺给药中的应用,特别是在通过干粉吸入器(dpi)使用药物气溶胶治疗哮喘和COPD方面的应用。气溶胶给药的有效性依赖于对呼吸系统中颗粒沉积的准确评估和预测。这种方法至关重要,因为与口服药物相比,肺部疾病病例数量多,肺部吸收能力强,所需剂量低,全身副作用少。考虑到体内和体外方法的局限性,CFD建模在过去20年中得到了迅速发展,特别是与离散相模型(DPM)和离散元方法(DEM)相结合。CFD模拟可以使用粒子和气流传输方程的数值解正确地解释广泛的现实或理想参数。实现精确的模拟需要避免简化和接近现实世界的条件,这将很快成为可能与先进的计算工具。本研究旨在回顾沿口腔到肺部途径的肺部药物输送的数值模拟,包括控制方程,力,边界条件,肺部几何形状对CFD建模的影响,粉末特性对雾化和肺沉积的影响,体外/体内数据的计算结果验证,以及当前挑战和未来前景的讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Investigation to Improve Pulmonary Drug Delivery via Dry Powder Inhalers: A Review of In-Silico Modeling.

This review focuses on the application of computational fluid dynamics (CFD) in pulmonary drug delivery, particularly for treating asthma and COPD with pharmaceutical aerosols via dry powder inhalers (DPIs). Aerosol drug delivery effectiveness relies on accurate assessment and prediction of particle deposition in the respiratory system. This method is crucial due to the high number of pulmonary disease cases, efficient lung absorption capabilities, lower dosage required, and reduced systemic side effects compared to oral medications. Given the limits of in vivo and in vitro methods, CFD modeling has advanced rapidly over 20 years, especially when combined with discrete phase model (DPM) and discrete element method (DEM) approaches. CFD simulations can correctly account for a wide range of realistic or idealized parameters using numerical solutions of particle and airflow transport equations. Achieving accurate simulations requires avoiding simplifications and approximating real-world conditions, which will soon be more possible with advancing computing tools. The research aims to review numerical modeling of pulmonary drug delivery along the mouth-to-lung pathway, encompassing governing equations, forces, boundary conditions, the influence of lung geometry on CFD modeling, the effects of powder characteristics on aerosolization and pulmonary deposition, validation of computational results with in vitro/in vivo data, and a discussion of current challenges and future prospects.

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来源期刊
Pharmaceutical Research
Pharmaceutical Research 医学-化学综合
CiteScore
6.60
自引率
5.40%
发文量
276
审稿时长
3.4 months
期刊介绍: Pharmaceutical Research, an official journal of the American Association of Pharmaceutical Scientists, is committed to publishing novel research that is mechanism-based, hypothesis-driven and addresses significant issues in drug discovery, development and regulation. Current areas of interest include, but are not limited to: -(pre)formulation engineering and processing- computational biopharmaceutics- drug delivery and targeting- molecular biopharmaceutics and drug disposition (including cellular and molecular pharmacology)- pharmacokinetics, pharmacodynamics and pharmacogenetics. Research may involve nonclinical and clinical studies, and utilize both in vitro and in vivo approaches. Studies on small drug molecules, pharmaceutical solid materials (including biomaterials, polymers and nanoparticles) biotechnology products (including genes, peptides, proteins and vaccines), and genetically engineered cells are welcome.
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