Implications of the local hemodynamic forces on the formation and destabilization of neoatherosclerotic lesions.
暂无分享,去创建一个
Jouke Dijkstra | Ryo Torii | Erhan Tenekecioglu | Christos V. Bourantas | Evelyn Regar | Antonis Karanasos | Stephan Windecker | Hector M. Garcia-Garcia | Patrick W. Serruys | Andreas Baumbach | P. Serruys | L. Räber | A. Baumbach | S. Windecker | H. Garcia-Garcia | E. Regar | J. Dijkstra | A. Mathur | Yaojun Zhang | R. Torii | T. Crake | C. Bourantas | E. Tenekecioğlu | Lorenz Räber | Anthony Mathur | S. Hamshere | A. Karanasos | Tom Crake | Muhiddin Ozkor | Yao-Jun Zhang | Rodrigue Stettler | Kush Patel | Steve Hamshere | Kush P. Patel | M. Ozkor | R. Stettler
[1] Akiko Maehara,et al. Consensus standards for acquisition, measurement, and reporting of intravascular optical coherence tomography studies: a report from the International Working Group for Intravascular Optical Coherence Tomography Standardization and Validation. , 2012, Journal of the American College of Cardiology.
[2] F. Eberli,et al. Five-Year Clinical and Angiographic Outcomes of a Randomized Comparison of Sirolimus-Eluting and Paclitaxel-Eluting Stents: Results of the Sirolimus-Eluting Versus Paclitaxel-Eluting Stents for Coronary Revascularization LATE Trial , 2011, Circulation.
[3] P. Serruys,et al. Vascular Tissue Reaction to Acute Malapposition in Human Coronary Arteries: Sequential Assessment With Optical Coherence Tomography , 2012, Circulation. Cardiovascular interventions.
[4] P. Serruys,et al. Preclinical assessment of the endothelial shear stress in porcine-based models following implantation of two different bioresorbable scaffolds: effect of scaffold design on the local haemodynamic micro-environment. , 2016, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[5] Dimitrios I Fotiadis,et al. The effect of shear stress on neointimal response following sirolimus- and paclitaxel-eluting stent implantation compared with bare-metal stents in humans. , 2010, JACC. Cardiovascular interventions.
[6] Masataka Nakano,et al. The pathology of neoatherosclerosis in human coronary implants bare-metal and drug-eluting stents. , 2011, Journal of the American College of Cardiology.
[7] Takafumi Hiro,et al. Localized elevation of shear stress is related to coronary plaque rupture: a 3-dimensional intravascular ultrasound study with in-vivo color mapping of shear stress distribution. , 2008, Journal of the American College of Cardiology.
[8] Y. Castier,et al. p47phox-Dependent NADPH Oxidase Regulates Flow-Induced Vascular Remodeling , 2005, Circulation research.
[9] R. Virmani,et al. Small black holes in optical frequency domain imaging matches intravascular neoangiogenesis formation in histology. , 2010, European heart journal.
[10] A. Tedgui,et al. Role of matrix metalloproteinases in blood flow-induced arterial enlargement: interaction with NO. , 2000, Arteriosclerosis, thrombosis, and vascular biology.
[11] Frank Gijsen,et al. Shear stress and advanced atherosclerosis in human coronary arteries. , 2013, Journal of biomechanics.
[12] P. Serruys,et al. Variability in the measurement of minimum fibrous cap thickness and reproducibility of fibroatheroma classification by optical coherence tomography using manual versus semi-automatic assessment. , 2016, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[13] Takafumi Hiro,et al. Longitudinal structural determinants of atherosclerotic plaque vulnerability: a computational analysis of stress distribution using vessel models and three-dimensional intravascular ultrasound imaging. , 2005, Journal of the American College of Cardiology.
[14] P. Serruys,et al. Natural history of optical coherence tomography-detected non-flow-limiting edge dissections following drug-eluting stent implantation. , 2014, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[15] Yoshihiko Saito,et al. Thin-cap fibroatheroma and microchannel findings in optical coherence tomography correlate with subsequent progression of coronary atheromatous plaques. , 2012, European heart journal.
[16] R Krishna Kumar,et al. Influence of lumen shape and vessel geometry on plaque stresses: possible role in the increased vulnerability of a remodelled vessel and the “shoulder” of a plaque , 2005, Heart.
[17] R. Whitbourn,et al. Bioresorbable vascular scaffold treatment induces the formation of neointimal cap that seals the underlying plaque without compromising the luminal dimensions: a concept based on serial optical coherence tomography data. , 2015, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[18] Dimitrios I Fotiadis,et al. Anatomically correct three-dimensional coronary artery reconstruction using frequency domain optical coherence tomographic and angiographic data: head-to-head comparison with intravascular ultrasound for endothelial shear stress assessment in humans. , 2015, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[19] Nicolas Foin,et al. Biomechanical stress in coronary atherosclerosis: emerging insights from computational modelling , 2016, European heart journal.
[20] Antonis Sakellarios,et al. Impact of local endothelial shear stress on neointima and plaque following stent implantation in patients with ST-elevation myocardial infarction: A subgroup-analysis of the COMFORTABLE AMI-IBIS 4 trial. , 2015, International journal of cardiology.
[21] Sergio Waxman,et al. Determination of in vivo velocity and endothelial shear stress patterns with phasic flow in human coronary arteries: a methodology to predict progression of coronary atherosclerosis. , 2002, American heart journal.
[22] L. Räber,et al. The association between in-stent neoatherosclerosis and native coronary artery disease progression: a long-term angiographic and optical coherence tomography cohort study. , 2015, European heart journal.
[23] P. Stone,et al. Ongoing Methodological Approaches to Improve the In Vivo Assessment of Local Coronary Blood Flow and Endothelial Shear Stress: The Devil Is in the Details. , 2015, Journal of the American College of Cardiology.
[24] Michail I. Papafaklis,et al. Effect of the endothelial shear stress patterns on neointimal proliferation following drug-eluting bioresorbable vascular scaffold implantation: an optical coherence tomography study. , 2014, JACC: Cardiovascular Interventions.
[25] Eloisa Arbustini,et al. Expert review document on methodology, terminology, and clinical applications of optical coherence tomography: physical principles, methodology of image acquisition, and clinical application for assessment of coronary arteries and atherosclerosis. , 2010, European heart journal.
[26] Charles A. Taylor,et al. Impact of Longitudinal Lesion Geometry on Location of Plaque Rupture and Clinical Presentations. , 2017, JACC Cardiovascular Imaging.
[27] Michail I. Papafaklis,et al. Effects of Low Endothelial Shear Stress After Stent Implantation on Subsequent Neointimal Hyperplasia and Clinical Outcomes in Humans , 2016, Journal of the American Heart Association.