首页> 外文期刊>Journal of biomedical materials research, Part A >Potential damage in pulmonary arterial hypertension: An experimental study ofpressure-induceddamage of pulmonary artery
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Potential damage in pulmonary arterial hypertension: An experimental study ofpressure-induceddamage of pulmonary artery

机译:肺动脉高压潜在损伤:肺动脉压力诱导损伤的实验研究

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摘要

Pulmonary arterial hypertension (PAH) is associated with elevated pulmonary arterial pressure. PAH prognosis remains poor with a 15% mortality rate within 1 year, even with modern clinical management. Previous clinical studies proposed wall shear stress (WSS) to be an important hemodynamic factor affecting cell mechanotransduction, growth and remodeling, and disease progress in PAH. However, WSS in vivo is typically at most 2.5 Pa and a doubt has been cast whether WSS alone can drive disease progress. Furthermore, our current understanding of PAH pathology largely comes from small animals' studies in which caliber enlargement, a hallmark of PAH in humans, is rarely reported. Therefore, a large-animal experiment on pulmonary arteries (PAs) is needed to validate whether increased pressure can induce enlargement of PAs caliber. In this study, we use an inflation testing device to characterize the mechanical behavior, both nonlinear elastic behavior and irreversible damage of porcine arteries. The parameters of elastic behavior are estimated from the inflation test at a low-pressure range before and after over-pressurization. Then, histological images are qualitatively examined for medial and adventitial layers. This study sheds light on the relevance of pressure-induced damage mechanism in human PAH.
机译:肺动脉高压(PAH)与肺动脉压升高有关。PAH预后仍然很差,即使采用现代临床治疗,1年内死亡率仍为15%。以往的临床研究表明,壁切应力(WSS)是影响PAH细胞机械传导、生长和重塑以及疾病进展的重要血流动力学因素。然而,WSS在体内的压力通常不超过2.5 Pa,人们怀疑WSS本身是否能推动疾病的进展。此外,我们目前对多环芳烃病理学的理解主要来自于小动物的研究,在这些研究中,口径增大是人类多环芳烃的一个特征,很少有报道。因此,需要对肺动脉(PAs)进行大型动物实验,以验证压力增加是否会导致PAs口径增大。在本研究中,我们使用充气测试装置来表征猪动脉的力学行为,包括非线性弹性行为和不可逆损伤。通过超压前后低压范围内的充气试验,估计弹性性能参数。然后,定性检查组织学图像的内侧层和外膜层。这项研究揭示了人类多环芳烃中压力诱导损伤机制的相关性。

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