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针对 COVID-19 晚期肺部通气模拟的多尺度计算机建模工作流程

Towards a multi-scale computer modeling workflow for simulation of pulmonary ventilation in advanced COVID-19.

机构信息

Department of Engineering, College of Engineering and Technology, East Carolina University, Greenville, NC, USA.

Division of Pulmonary and Critical Medicine, Brody School of Medicine, East Carolina University, Greenville, NC, USA.

出版信息

Comput Biol Med. 2022 Jun;145:105513. doi: 10.1016/j.compbiomed.2022.105513. Epub 2022 Apr 12.

Abstract

Physics-based multi-scale in silico models offer an excellent opportunity to study the effects of heterogeneous tissue damage on airflow and pressure distributions in COVID-19-afflicted lungs. The main objective of this study is to develop a computational modeling workflow, coupling airflow and tissue mechanics as the first step towards a virtual hypothesis-testing platform for studying injury mechanics of COVID-19-afflicted lungs. We developed a CT-based modeling approach to simulate the regional changes in lung dynamics associated with heterogeneous subject-specific COVID-19-induced damage patterns in the parenchyma. Furthermore, we investigated the effect of various levels of inflammation in a meso-scale acinar mechanics model on global lung dynamics. Our simulation results showed that as the severity of damage in the patient's right lower, left lower, and to some extent in the right upper lobe increased, ventilation was redistributed to the least injured right middle and left upper lobes. Furthermore, our multi-scale model reasonably simulated a decrease in overall tidal volume as the level of tissue injury and surfactant loss in the meso-scale acinar mechanics model was increased. This study presents a major step towards multi-scale computational modeling workflows capable of simulating the effect of subject-specific heterogenous COVID-19-induced lung damage on ventilation dynamics.

摘要

基于物理的多尺度计算模型为研究 COVID-19 肺部疾病中不均匀组织损伤对气流和压力分布的影响提供了极好的机会。本研究的主要目的是开发一种计算建模工作流程,将气流和组织力学耦合作为研究 COVID-19 肺部损伤力学的虚拟假设检验平台的第一步。我们开发了一种基于 CT 的建模方法,以模拟与实质中不均匀的 COVID-19 诱导损伤模式相关的区域性肺动力学变化。此外,我们还研究了中尺度腺泡力学模型中不同程度的炎症对整体肺动力学的影响。我们的模拟结果表明,随着患者右下、左下肺损伤程度的增加,通气会重新分配到损伤最小的右中叶和左上叶。此外,我们的多尺度模型合理地模拟了随着中尺度腺泡力学模型中组织损伤和表面活性剂损失程度的增加,整体潮气量的减少。本研究朝着能够模拟特定于个体的不均匀 COVID-19 诱导肺损伤对通气动力学影响的多尺度计算建模工作流程迈出了重要一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8f1/9005224/967d9df3750f/gr1_lrg.jpg

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