男性吸入气体和气溶胶吸收的统一全肺PBK模型。

IF 3 3区 医学 Q2 PHARMACOLOGY & PHARMACY
Norman Nowak, Sylvia E Escher, Katharina Schwarz
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引用次数: 0

摘要

评估吸入物质的风险或益处是具有挑战性的,因为它可以以多种形式存在(气体、蒸气、颗粒或液滴),并且在其吸收和保留过程中涉及复杂的生物过程。基于生理的动力学(PBK)模型为体内实验提供了另一种选择。然而,迄今为止,用于吸入吸收量的PBK模型要么是为气体/蒸气设计的,要么是为空气中的颗粒物设计的,通常只有较低的区域划分。这里介绍的新开发的模型结合了这两个应用程序。其机制是PBK和非PBK模型的融合,整合到人肺的多室描述中,包括不同肺区域的相关摄取和清除过程,其中巨噬细胞介导的溶解是PBK模型的新内容。该模型被设计为使用最小数量的物质特异性输入参数,这些参数可以从体外测定或计算机方法中获得。对具有不同物理化学性质的假设物质进行了模型预测,并进行了基本的灵敏度分析,以确定气体/蒸气和颗粒的最重要参数。这种新颖的PBK模型结合了所有这些方面,并提供了全身和局部肺浓度的计算机预测,减少了风险评估的不确定性,并支持药物开发。它是一种有价值的工具,可将名义环境空气剂量转化为肺内有效的局部剂量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Unified Whole Lung PBK Model for Inhalational Uptake of Gases and Aerosols in Men.

Assessing the risk or benefit of an inhaled substance is challenging due to the variety of forms it can take (gas, vapor, particle, or droplet) and the complex biological processes involved in its uptake and retention. Physiologically based kinetic (PBK) models offer an alternative to in vivo experiments. However, PBK models for inhalational uptake are to date either designed for gases/vapors or airborne particulates, often with only low regional compartmentalization. The here-presented, newly developed model combines both applications. Its mechanisms are an amalgamation of PBK and non-PBK models integrated into a multicompartmental description of the human lung to include the relevant uptake and clearance processes in the different lung regions, of which macrophage-mediated dissolution is novel to PBK modeling. The model was designed to use a minimal number of substance-specific input parameters, which can be derived from in vitro assays or in silico methods. Model predictions for hypothetical substances with varying physicochemical properties were performed, along with rudimentary sensitivity analyses to identify the most important parameters for gases/vapors and particles. This novel PBK model combines all these aspects and provides in silico predictions of systemic and local lung concentrations, reducing uncertainty in risk assessments and supporting drug development. It serves as a valuable tool to translate nominal ambient air doses into effective localized doses within the lung.

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来源期刊
CiteScore
5.00
自引率
11.40%
发文量
146
审稿时长
8 weeks
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