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Adenosine A1 receptors in neointimal hyperplasia and in-stent stenosis in Ossabaw miniature swine.奥萨巴微型猪新生内膜增生和支架内狭窄中的腺苷A1受体
Coron Artery Dis. 2008 Feb;19(1):27-31. doi: 10.1097/MCA.0b013e3282f262b4.
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Endothelial mechanisms of flow-mediated athero-protection and susceptibility.
Circ Res. 2007 Jul 6;101(1):10-2. doi: 10.1161/CIRCRESAHA.107.156539.
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Stent thrombosis late after implantation of first-generation drug-eluting stents: a cause for concern.第一代药物洗脱支架植入术后晚期支架内血栓形成:一个值得关注的问题。
Circulation. 2007 Mar 20;115(11):1440-55; discussion 1455. doi: 10.1161/CIRCULATIONAHA.106.666800. Epub 2007 Mar 7.
4
Drug-eluting stents and stent thrombosis: a cause for concern?药物洗脱支架与支架内血栓形成:值得担忧的原因?
Coron Artery Dis. 2006 Dec;17(8):661-5. doi: 10.1097/MCA.0b013e32801122b1.
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Circulation. 2006 May 16;113(19):2262-5. doi: 10.1161/CIRCULATIONAHA.106.623470.
6
Shear stress biology of the endothelium.内皮细胞的切应力生物学
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Axial stent strut angle influences wall shear stress after stent implantation: analysis using 3D computational fluid dynamics models of stent foreshortening.轴向支架支柱角度影响支架植入后的壁面剪应力:使用支架缩短的三维计算流体动力学模型进行分析。
Biomed Eng Online. 2005 Oct 26;4:59. doi: 10.1186/1475-925X-4-59.
8
Multiphase hemodynamic simulation of pulsatile flow in a coronary artery.冠状动脉中脉动血流的多相血流动力学模拟
J Biomech. 2006;39(11):2064-73. doi: 10.1016/j.jbiomech.2005.06.023. Epub 2005 Aug 19.
9
Computational study of fluid mechanical disturbance induced by endovascular stents.血管内支架引起的流体力学扰动的计算研究。
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10
Calcification of tissue heart valve substitutes: progress toward understanding and prevention.组织心脏瓣膜替代品的钙化:在理解和预防方面的进展
Ann Thorac Surg. 2005 Mar;79(3):1072-80. doi: 10.1016/j.athoracsur.2004.06.033.

支架尺寸对内皮及血管壁应力的影响:支架内再狭窄的潜在机制

Effects of stent sizing on endothelial and vessel wall stress: potential mechanisms for in-stent restenosis.

作者信息

Chen Henry Y, Hermiller James, Sinha Anjan K, Sturek Michael, Zhu Luoding, Kassab Ghassan S

机构信息

Indiana Univ. Purdue Univ. Indianapolis, Biomedical Engineering, SL-174, 723 West Michigan St., Indianapolis, Indiana 46202.

出版信息

J Appl Physiol (1985). 2009 May;106(5):1686-91. doi: 10.1152/japplphysiol.91519.2008. Epub 2009 Mar 19.

DOI:10.1152/japplphysiol.91519.2008
PMID:19299567
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2681330/
Abstract

Stent sizing and apposition have been shown to be important determinants of clinical outcome. This study evaluates the mechanical effects of undersizing and oversizing of stents on endothelial wall shear stress (WSS) and vessel wall stress to determine a possible biomechanical mechanism of in-stent restenosis and thrombosis. Three-dimensional computational models of stents, artery, and internal fluid were created in a computer-assisted design package, meshed, and solved in finite element and computational fluid dynamic packages. The simulation results show that the effects of various degrees of undersizing on WSS, WSS gradient, and oscillatory shear index were highly nonlinear. As the degree of undersizing increased, the heterogeneity of WSS became smaller. The WSS distribution for the 20% undersizing was smooth and uniform, whereas the 5% case was very heterogeneous. The combination of lower WSS and higher WSS gradient and oscillatory shear index in the 5% undersized case may induce neointimal hyperplasia or thrombosis. Additionally, the oversizing simulation results show that the maximum intramural wall stress of the 20% oversizing case is significantly larger than the maximum stress for the 10% and zero oversizing cases. Edge stress concentration was observed, consistent with the restenosis typically observed in this region. This study demonstrates that proper sizing of stent is important for reducing the hemodynamic and mechanical disturbances to the vessel wall. Furthermore, the present findings may be used to improve stent design to reduce endothelial flow disturbances and intramural wall stress concentrations.

摘要

支架尺寸和贴壁情况已被证明是临床结果的重要决定因素。本研究评估支架尺寸过小和过大对内皮壁面切应力(WSS)和血管壁应力的力学影响,以确定支架内再狭窄和血栓形成可能的生物力学机制。在计算机辅助设计软件包中创建支架、动脉和内部流体的三维计算模型,进行网格划分,并在有限元和计算流体动力学软件包中求解。模拟结果表明,不同程度的尺寸过小对WSS、WSS梯度和振荡切变指数的影响具有高度非线性。随着尺寸过小程度的增加,WSS的不均匀性变小。20%尺寸过小情况下的WSS分布平滑且均匀,而5%尺寸过小的情况则非常不均匀。在5%尺寸过小的情况下,较低的WSS与较高的WSS梯度和振荡切变指数相结合可能会诱发内膜增生或血栓形成。此外,尺寸过大的模拟结果表明,20%尺寸过大情况下的最大壁内应力明显大于10%尺寸过大和零尺寸过大情况下的最大应力。观察到边缘应力集中,这与该区域通常观察到的再狭窄一致。本研究表明,合适的支架尺寸对于减少对血管壁的血流动力学和力学干扰很重要。此外,目前的研究结果可用于改进支架设计,以减少内皮血流紊乱和壁内应力集中。