Association Between Carotid Atherosclerotic Plaque Calcification and Intraplaque Hemorrhage: A Magnetic Resonance Imaging Study
暂无分享,去创建一个
Xihai Zhao | Ruolan Lin | Gaifen Liu | Xihai Zhao | Yunjing Xue | Ruolan Lin | Shuo Chen | Shuo Chen | Gaifen Liu | Yunjing Xue
[1] W. Kerwin,et al. Adventitial Perfusion and Intraplaque Hemorrhage: A Dynamic Contrast-Enhanced MRI Study in the Carotid Artery , 2013, Stroke.
[2] Jianming Cai,et al. High-resolution MR study of the relationship between superficial calcification and the stability of carotid atherosclerotic plaque , 2010, The International Journal of Cardiovascular Imaging.
[3] Dorothee Auer,et al. Detection of intraplaque hemorrhage by magnetic resonance imaging in symptomatic patients with mild to moderate carotid stenosis predicts recurrent neurological events. , 2008, Journal of vascular surgery.
[4] Fei Liu,et al. Magnetic Resonance Imaging of Carotid Atherosclerosis: Plaque Analysis , 2007, Topics in magnetic resonance imaging : TMRI.
[5] L. Jiao,et al. Correlation Between Carotid Intraplaque Hemorrhage and Clinical Symptoms: Systematic Review of Observational Studies , 2007, Stroke.
[6] E. Boerwinkle,et al. From vulnerable plaque to vulnerable patient: a call for new definitions and risk assessment strategies: Part I. , 2003, Circulation.
[7] C. Alpers,et al. Neovascular expression of E-selectin, intercellular adhesion molecule-1, and vascular cell adhesion molecule-1 in human atherosclerosis and their relation to intimal leukocyte content. , 1996, Circulation.
[8] M. Robson,et al. Plaque features associated with increased cerebral infarction after minor stroke and TIA: a prospective, case-control, 3-T carotid artery MR imaging study. , 2012, JACC. Cardiovascular imaging.
[9] Lambert Speelman,et al. Local axial compressive mechanical properties of human carotid atherosclerotic plaques-characterisation by indentation test and inverse finite element analysis. , 2013, Journal of biomechanics.
[10] J. Gillard,et al. Does Calcium Deposition Play a Role in the Stability of Atheroma? Location May Be the Key , 2007, Cerebrovascular Diseases.
[11] Sheldon Weinbaum,et al. Micro-CT based analysis of a new paradigm for vulnerable plaque rupture: cellular microcalcifications in fibrous caps. , 2008, Molecular & cellular biomechanics : MCB.
[12] R. Kraft,et al. Differences in carotid arterial morphology and composition between individuals with and without obstructive coronary artery disease: A cardiovascular magnetic resonance study , 2008, Journal of cardiovascular magnetic resonance : official journal of the Society for Cardiovascular Magnetic Resonance.
[13] C. Yuan,et al. Blood Pressure Is a Major Modifiable Risk Factor Implicated in Pathogenesis of Intraplaque Hemorrhage: An In Vivo Magnetic Resonance Imaging Study , 2016, Arteriosclerosis, thrombosis, and vascular biology.
[14] Shmuel Einav,et al. A hypothesis for vulnerable plaque rupture due to stress-induced debonding around cellular microcalcifications in thin fibrous caps , 2006, Proceedings of the National Academy of Sciences.
[15] D. Parker,et al. Prediction of Carotid Intraplaque Hemorrhage Using Adventitial Calcification and Plaque Thickness on CTA , 2016, American Journal of Neuroradiology.
[16] O. Franco,et al. Coexistence of Calcification, Intraplaque Hemorrhage and Lipid Core within the Asymptomatic Atherosclerotic Carotid Plaque: The Rotterdam Study , 2015, Cerebrovascular Diseases.
[17] Aloke V. Finn,et al. Atherosclerotic Plaque Progression and Vulnerability to Rupture: Angiogenesis as a Source of Intraplaque Hemorrhage , 2005, Arteriosclerosis, thrombosis, and vascular biology.
[18] C. Yuan,et al. Association of carotid atherosclerotic plaque features with acute ischemic stroke: a magnetic resonance imaging study. , 2013, European journal of radiology.
[19] C. Yuan,et al. Comparison of symptomatic and asymptomatic atherosclerotic carotid plaque features with in vivo MR imaging. , 2006, Radiology.
[20] Jaladhar Neelavalli,et al. Imaging the vessel wall in major peripheral arteries using susceptibility‐weighted imaging , 2009, Journal of magnetic resonance imaging : JMRI.
[21] C. Yuan,et al. Quantitative Evaluation of Carotid Plaque Composition by In Vivo MRI , 2004, Arteriosclerosis, thrombosis, and vascular biology.
[22] Mariana Selwaness,et al. Blood Pressure Parameters and Carotid Intraplaque Hemorrhage as Measured by Magnetic Resonance Imaging: The Rotterdam Study , 2013, Hypertension.
[23] M. Leon,et al. Patterns of calcification in coronary artery disease. A statistical analysis of intravascular ultrasound and coronary angiography in 1155 lesions. , 1995, Circulation.
[24] A. Becker,et al. Leucocyte recruitment in rupture prone regions of lipid-rich plaques: a prominent role for neovascularization? , 1999, Cardiovascular research.
[25] Jonathan Gillard,et al. How Does Juxtaluminal Calcium Affect Critical Mechanical Conditions in Carotid Atherosclerotic Plaque? An Exploratory Study , 2014, IEEE Transactions on Biomedical Engineering.
[26] Y. Tintut,et al. Vascular calcification: mechanisms and clinical ramifications. , 2004, Arteriosclerosis, thrombosis, and vascular biology.
[27] Giovanni Simonetti,et al. High-resolution multicontrast-weighted MR imaging from human carotid endarterectomy specimens to assess carotid plaque components , 2008, European Radiology.
[28] Aad van der Lugt,et al. Determinants of magnetic resonance imaging detected carotid plaque components: the Rotterdam Study. , 2012, European heart journal.
[29] J. Hendrikse,et al. Use of Antiplatelet Agents Is Associated With Intraplaque Hemorrhage on Carotid Magnetic Resonance Imaging: The Plaque at Risk Study , 2015, Stroke.
[30] Chun Yuan,et al. Presence of Intraplaque Hemorrhage Stimulates Progression of Carotid Atherosclerotic Plaques: A High-Resolution Magnetic Resonance Imaging Study , 2005, Circulation.
[31] Peter M. Rothwell,et al. Histological Assessment of 526 Symptomatic Carotid Plaques in Relation to the Nature and Timing of Ischemic Symptoms: The Oxford Plaque Study , 2006 .
[32] Jing He,et al. Critical mechanical conditions around neovessels in carotid atherosclerotic plaque may promote intraplaque hemorrhage , 2012, Atherosclerosis.
[33] S. Einav,et al. Influence of microcalcifications on vulnerable plaque mechanics using FSI modeling. , 2008, Journal of biomechanics.
[34] E. Regar,et al. Calcified nodules: an underrated mechanism of coronary thrombosis? , 2012, JACC. Cardiovascular imaging.
[35] Frederick J. Schoen,et al. Prediction of mechanical properties of human atherosclerotic tissue by high-frequency intravascular ultrasound imaging. An in vitro study. , 1992 .
[36] Chun Yuan,et al. Classification of Human Carotid Atherosclerotic Lesions With In Vivo Multicontrast Magnetic Resonance Imaging , 2002, Circulation.
[37] C. Yuan,et al. Quantifying effect of intraplaque hemorrhage on critical plaque wall stress in human atherosclerotic plaques using three-dimensional fluid-structure interaction models. , 2012, Journal of biomechanical engineering.
[38] I. Nuñez-Gil,et al. Coronary thrombosis from large, nonprotruding, superficial calcified coronary plaques. , 2013, Journal of the American College of Cardiology.
[39] C. Yuan,et al. Carotid intraplaque hemorrhage imaging at 3.0-T MR imaging: comparison of the diagnostic performance of three T1-weighted sequences. , 2010, Radiology.
[40] Rui Li,et al. Evaluation of 3D multi-contrast joint intra- and extracranial vessel wall cardiovascular magnetic resonance , 2015, Journal of Cardiovascular Magnetic Resonance.
[41] E. Ritman,et al. Segmental heterogeneity of vasa vasorum neovascularization in human coronary atherosclerosis. , 2010, JACC. Cardiovascular imaging.