Literature DB >> 21926337

Mis-sizing of stent promotes intimal hyperplasia: impact of endothelial shear and intramural stress.

Henry Y Chen1, Anjan K Sinha, Jenny S Choy, Hai Zheng, Michael Sturek, Brian Bigelow, Deepak L Bhatt, Ghassan S Kassab.   

Abstract

Stent can cause flow disturbances on the endothelium and compliance mismatch and increased stress on the vessel wall. These effects can cause low wall shear stress (WSS), high wall shear stress gradient (WSSG), oscillatory shear index (OSI), and circumferential wall stress (CWS), which may promote neointimal hyperplasia (IH). The hypothesis is that stent-induced abnormal fluid and solid mechanics contribute to IH. To vary the range of WSS, WSSG, OSI, and CWS, we intentionally mismatched the size of stents to that of the vessel lumen. Stents were implanted in coronary arteries of 10 swine. Intravascular ultrasound (IVUS) was used to size the coronary arteries and stents. After 4 wk of stent implantation, IVUS was performed again to determine the extent of IH. In conjunction, computational models of actual stents, the artery, and non-Newtonian blood were created in a computer simulation to yield the distribution of WSS, WSSG, OSI, and CWS in the stented vessel wall. An inverse relation (R(2) = 0.59, P < 0.005) between WSS and IH was found based on a linear regression analysis. Linear relations between WSSG, OSI, and IH were observed (R(2) = 0.48 and 0.50, respectively, P < 0.005). A linear relation (R(2) = 0.58, P < 0.005) between CWS and IH was also found. More statistically significant linear relations between the ratio of CWS to WSS (CWS/WSS), the products CWS × WSSG and CWS × OSI, and IH were observed (R(2) = 0.67, 0.54, and 0.56, respectively, P < 0.005), suggesting that both fluid and solid mechanics influence the extent of IH. Stents create endothelial flow disturbances and intramural wall stress concentrations, which correlate with the extent of IH formation, and these effects were exaggerated with mismatch of stent/vessel size. These findings reveal the importance of reliable vessel and stent sizing to improve the mechanics on the vessel wall and minimize IH.

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Year:  2011        PMID: 21926337      PMCID: PMC3233818          DOI: 10.1152/ajpheart.00240.2011

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  40 in total

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Authors:  Edoardo Camenzind; P Gabriel Steg; William Wijns
Journal:  Circulation       Date:  2007-03-07       Impact factor: 29.690

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

Authors:  Henry Y Chen; James Hermiller; Anjan K Sinha; Michael Sturek; Luoding Zhu; Ghassan S Kassab
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6.  Leukocyte recruitment and expression of chemokines following different forms of vascular injury.

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7.  Three-dimensional computational fluid dynamics modeling of alterations in coronary wall shear stress produced by stent implantation.

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  11 in total

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3.  Temporal correlation between wall shear stress and in-stent stenosis after Wingspan stent in swine model.

Authors:  M Fujimoto; H Takao; T Suzuki; Y Shobayashi; F Mayor; S Tateshima; M Yamamoto; Y Murayama; F Viñuela
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4.  Impact of bifurcation dual stenting on endothelial shear stress.

Authors:  Henry Y Chen; Bon-Kwon Koo; Ghassan S Kassab
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5.  Which diameter and angle rule provides optimal flow patterns in a coronary bifurcation?

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Review 6.  Microstructure-based biomechanics of coronary arteries in health and disease.

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7.  Biomechanical impact of provisional stenting and balloon dilatation on coronary bifurcation: clinical implications.

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Review 8.  Patient-Specific Modeling of Stented Coronary Arteries Reconstructed from Optical Coherence Tomography: Towards a Widespread Clinical Use of Fluid Dynamics Analyses.

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9.  Hemodynamics and pathology of an enlarging abdominal aortic aneurysm model in rabbits.

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10.  Electrical Conductance Device for Stent Sizing.

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