肺叶滑动对右肺实质畸变的影响大于左肺。

IF 1.7 4区 医学 Q4 BIOPHYSICS
Adam E Galloy, Joseph M Reinhardt, Madhavan L Raghavan
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引用次数: 0

摘要

长期以来,人们一直怀疑肺叶间滑动通过减少实质扭曲来帮助肺部适应胸腔形状的变化。我们之前的控制计算实验验证了肺叶滑动减少呼吸时实质扭曲的假设,但只研究了左肺。这项研究的目的是将这种分析扩展到右肺,与左肺相比,右肺有三个肺叶和两个裂隙。S二裂片和单裂。使用右肺的有限弹性接触力学模型进行配对的受试者特异性肺变形模拟,模拟在tidal呼吸量(n = 8)和接近肺活量和功能剩余量(n = 6)的屏气量下,有和没有肺叶从吸气端到呼气端滑动的肺变形。与假设一致,我们发现,各向异性变形指数的空间平均值量化了每个肺模型的实质变形,与非滑动模型相比,大叶滑动模型的差异较小(潮汐呼吸的中位数差异p = 0.008, 13%;屏气的中位数差异p = 0.03, 19.6%)。这种影响比之前在左肺中观察到的要大几倍(潮汐呼吸p = 0.008,中位差为5.3%,屏气p = 0.03,中位差为3.2%),可能是由于右肺比左肺有更多的滑动界面,使右肺更好地适应胸腔。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lobar Sliding Reduces Parenchymal Distortion More in the Right Lung than the Left Lung.

Interlobar sliding has long been suspected to help the lungs adapt to changes in thoracic cavity shape by reducing parenchymal distortion. Our previous controlled computational experiment tested the hypothesis that lung lobar sliding reduces parenchymal distortion during breathing, but only the left lung was studied. The goal of this study was to extend this analysis to the right lung which has three lobes and two fissures compared to the left lung?s two lobes and single fissure. Finite elastic contact mechanics models of the right lung were used to perform paired subject-specific simulations of lung deformation with and without lobar sliding from end inhale to end exhale at both tidal breathing volumes (n = 8) and breath hold volumes near total lung capacity and functional residual capacity (n = 6). Consistent with the hypothesis, we found that parenchymal distortion, quantified with the spatial mean of the anisotropic deformation index throughout each lung model, was lesser in the models with lobar sliding than their non-sliding counterparts (p = 0.008, 13% median difference for tidal breathing and p = 0.03, 19.6% median difference for breath holds). This effect was several times larger than was previously observed in the left lung (p = 0.008, 5.3% median difference for tidal breathing and p = 0.03, 3.2% median difference for breath holds), likely due to the greater number of sliding interfaces in the right lung than the left which better allow the right lung to adapt to the thoracic cavity.

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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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