Progress in atherosclerotic plaque imaging.
暂无分享,去创建一个
[1] Francesco Conversano,et al. Magnetic/Silica Nanocomposites as Dual‐Mode Contrast Agents for Combined Magnetic Resonance Imaging and Ultrasonography , 2011 .
[2] Andrew E Arai,et al. Radiation Dose from Single-Heartbeat Coronary CT Angiography Performed with a 320 – Detector Row Volume Scanner 1 , 2010 .
[3] W. B. Meijboom,et al. 64-Slice CT coronary angiography in patients with non-ST elevation acute coronary syndrome , 2007, Heart.
[4] V. Fuster,et al. Lipid-Rich Atherosclerotic Plaques Detected by Gadofluorine-Enhanced In Vivo Magnetic Resonance Imaging , 2004, Circulation.
[5] Ogan Ocali,et al. Intravascular magnetic resonance imaging using a loopless catheter antenna , 1997, Magnetic resonance in medicine.
[6] Susannah H Bloch,et al. Application of Ultrasound to Selectively Localize Nanodroplets for Targeted Imaging and Therapy , 2006, Molecular imaging.
[7] Ralph Weissleder,et al. Detection of Vascular Adhesion Molecule-1 Expression Using a Novel Multimodal Nanoparticle , 2005, Circulation research.
[8] S. Bailey,et al. Nanotechnology in cardiovascular medicine , 2007, Catheterization and cardiovascular interventions : official journal of the Society for Cardiac Angiography & Interventions.
[9] Zahi A Fayad,et al. Recombinant HDL-like nanoparticles: a specific contrast agent for MRI of atherosclerotic plaques. , 2004, Journal of the American Chemical Society.
[10] Warren J Manning,et al. Clinical indications for cardiovascular magnetic resonance (CMR): Consensus Panel report. , 2004, Journal of cardiovascular magnetic resonance : official journal of the Society for Cardiovascular Magnetic Resonance.
[11] E. Halpern,et al. Quantification of Macrophage Content in Atherosclerotic Plaques by Optical Coherence Tomography , 2003, Circulation.
[12] J. Pickard,et al. Imaging Atherosclerotic Plaque Inflammation With [18F]-Fluorodeoxyglucose Positron Emission Tomography , 2002, Circulation.
[13] Masatoshi Ishibashi,et al. Simvastatin attenuates plaque inflammation: evaluation by fluorodeoxyglucose positron emission tomography. , 2006, Journal of the American College of Cardiology.
[14] Axel Thran,et al. Note: This Copy Is for Your Personal, Non-commercial Use Only. to Order Presentation-ready Copies for Distribution to Your Colleagues or Clients, Contact Us at Www.rsna.org/rsnarights. Atherosclerotic Plaque Composition: Analysis with Multicolor Ct and Targeted Gold Nanoparticles 1 Materials and Met , 2022 .
[15] J. Ophir,et al. Elastography: Elasticity Imaging Using Ultrasound with Application to Muscle and Breast in Vivo , 1993, Ultrasonic imaging.
[16] P. Serruys,et al. Clinical expert consensus document on standards for acquisition, measurement and reporting of intravascular ultrasound regression/progression studies. , 2011, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[17] Ji-Xin Cheng,et al. Gold Nanorods as Contrast Agents for Biological Imaging: Optical Properties, Surface Conjugation and Photothermal Effects † , 2009, Photochemistry and photobiology.
[18] J. Debatin,et al. MR imaging of the vessel wall , 2002, European Radiology.
[19] V. Fuster,et al. The BioImage Study: novel approaches to risk assessment in the primary prevention of atherosclerotic cardiovascular disease--study design and objectives. , 2010, American heart journal.
[20] Roland Haubner,et al. αvβ3-integrin imaging: a new approach to characterise angiogenesis? , 2006, European Journal of Nuclear Medicine and Molecular Imaging.
[21] D. Miglioretti,et al. Radiation dose associated with common computed tomography examinations and the associated lifetime attributable risk of cancer. , 2009, Archives of internal medicine.
[22] 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.
[23] Jagat Narula,et al. Imaging vulnerable plaque by ultrasound. , 2006, Journal of the American College of Cardiology.
[24] Yasunori Ueda,et al. Detection of coronary plaque by computed tomography with a novel plaque analysis system, 'Plaque Map', and comparison with intravascular ultrasound and angioscopy. , 2005, Circulation journal : official journal of the Japanese Circulation Society.
[25] J. Haga,et al. Molecular basis of the effects of shear stress on vascular endothelial cells. , 2005, Journal of biomechanics.
[26] J. Baron,et al. Combined PET-FDG and USPIO-enhanced MR imaging in patients with symptomatic moderate carotid artery stenosis. , 2008, European journal of vascular and endovascular surgery : the official journal of the European Society for Vascular Surgery.
[27] G. Kopchok,et al. The impact of intravascular ultrasound (IVUS) on endovascular interventions. , 1999, Seminars in vascular surgery.
[28] P. Serruys,et al. True 3-dimensional reconstruction of coronary arteries in patients by fusion of angiography and IVUS (ANGUS) and its quantitative validation. , 2000, Circulation.
[29] Chun Yuan,et al. In Vivo Quantitative Measurement of Intact Fibrous Cap and Lipid-Rich Necrotic Core Size in Atherosclerotic Carotid Plaque: Comparison of High-Resolution, Contrast-Enhanced Magnetic Resonance Imaging and Histology , 2005, Circulation.
[30] P. Gao,et al. Preliminary study of hemodynamic distribution in patient-specific stenotic carotid bifurcation by image-based computational fluid dynamics , 2008, Acta radiologica.
[31] Daniel F. Kacher,et al. Characterization of Human Atherosclerotic Plaques by Intravascular Magnetic Resonance Imaging , 2005, Circulation.
[32] V. Fuster,et al. T2-weighted contrast for NMR characterization of human atherosclerosis. , 1995, Arteriosclerosis, thrombosis, and vascular biology.
[33] T. Imaizumi,et al. Vascular inflammation evaluated by [18F]-fluorodeoxyglucose positron emission tomography is associated with the metabolic syndrome. , 2007, Journal of the American College of Cardiology.
[34] Takashi Akasaka,et al. Assessment of culprit lesion morphology in acute myocardial infarction: ability of optical coherence tomography compared with intravascular ultrasound and coronary angioscopy. , 2007, Journal of the American College of Cardiology.
[35] J. Ophir,et al. Elastography: A Quantitative Method for Imaging the Elasticity of Biological Tissues , 1991, Ultrasonic imaging.
[36] Francesco Conversano,et al. Optimal Enhancement Configuration of Silica Nanoparticles for Ultrasound Imaging and Automatic Detection at Conventional Diagnostic Frequencies , 2010, Investigative radiology.
[37] Jonathan R. Lindner,et al. Molecular imaging of cardiovascular disease with contrast-enhanced ultrasonography , 2009, Nature Reviews Cardiology.
[38] Gijs van Soest,et al. Atherosclerotic tissue characterization in vivo by optical coherence tomography attenuation imaging. , 2010, Journal of biomedical optics.
[39] R. Semelka,et al. The American College of Radiology white paper on radiation dose in medicine:deep impact on the practice of cardiovascular imaging , 2007, Cardiovascular ultrasound.
[40] T. Yli-Kerttula,et al. Whole-body distribution of 11C-choline and uptake in knee synovitis , 2006, European Journal of Nuclear Medicine and Molecular Imaging.
[41] M. Di Loreto,et al. Immunodetection of human atherosclerotic plaque with 125I-labeled monoclonal antifibrin antibodies. , 1993, Atherosclerosis.
[42] Jeroen J. Bax,et al. Lesions without calcium: lessons from CT angiography , 2009, Heart.
[43] Hirofumi Anno,et al. Computed tomographic angiography characteristics of atherosclerotic plaques subsequently resulting in acute coronary syndrome. , 2009, Journal of the American College of Cardiology.
[44] P Tortoli,et al. Transverse Doppler spectral analysis for a correct interpretation of flow sonograms. , 1993, Ultrasound in medicine & biology.
[45] Frits Mastik,et al. Noninvasive detection of subclinical coronary atherosclerosis coupled with assessment of changes in plaque characteristics using novel invasive imaging modalities: the Integrated Biomarker and Imaging Study (IBIS). , 2006, Journal of the American College of Cardiology.
[46] E. Finol,et al. Reproducibility of IVUS border detection for carotid atherosclerotic plaque assessment. , 2012, Medical engineering & physics.
[47] N. Narula,et al. Molecular Imaging of Matrix Metalloproteinase Expression in Atherosclerotic Plaques of Mice Deficient in Apolipoprotein E or Low-Density-Lipoprotein Receptor , 2009, Journal of Nuclear Medicine.
[48] B. Weber,et al. 18F-Choline Images Murine Atherosclerotic Plaques Ex Vivo , 2005, Arteriosclerosis, thrombosis, and vascular biology.
[49] A. Davies,et al. Inflammation within carotid atherosclerotic plaque: assessment with late-phase contrast-enhanced US. , 2010, Radiology.
[50] Gary S. Mintz,et al. Intravascular Ultrasound Guidance Improves Angiographic and Clinical Outcome of Stent Implantation for Long Coronary Artery Stenoses: Final Results of a Randomized Comparison With Angiographic Guidance (TULIP Study) , 2003, Circulation.
[51] M L Bots,et al. Common carotid intima-media thickness and arterial stiffness: indicators of cardiovascular risk in high-risk patients. The SMART Study (Second Manifestations of ARTerial disease). , 1999, Circulation.
[52] P. Rothwell,et al. Critical Cap Thickness and Rupture in Symptomatic Carotid Plaques: The Oxford Plaque Study , 2008, Stroke.
[53] J. Gillard,et al. Identifying Inflamed Carotid Plaques Using In Vivo USPIO-Enhanced MR Imaging to Label Plaque Macrophages , 2006, Arteriosclerosis, thrombosis, and vascular biology.
[54] P. Weissberg,et al. Radionuclide imaging for the detection of inflammation in vulnerable plaques. , 2006, Journal of the American College of Cardiology.
[55] R A Wilson,et al. Detection and characterization of vascular lesions by intravascular ultrasound: an in vitro study correlated with histology. , 1992, Journal of the American Society of Echocardiography : official publication of the American Society of Echocardiography.
[56] D. Bilecen,et al. MR angiography with blood pool contrast agents , 2007, European Radiology.
[57] Sones Fm,et al. Cine-coronary arteriography. , 1962 .
[58] J. Fujimoto,et al. Optical coherence tomography for optical biopsy. Properties and demonstration of vascular pathology. , 1996, Circulation.
[59] R. Virmani,et al. Targeting of Apoptotic Macrophages and Experimental Atheroma With Radiolabeled Annexin V: A Technique With Potential for Noninvasive Imaging of Vulnerable Plaque , 2003, Circulation.
[60] Tomas Gustavsson,et al. A multiscale dynamic programming procedure for boundary detection in ultrasonic artery images , 2000, IEEE Transactions on Medical Imaging.
[61] R H Selzer,et al. The Role of Carotid Arterial Intima-Media Thickness in Predicting Clinical Coronary Events , 1998, Annals of Internal Medicine.
[62] D. Vince,et al. Automated coronary plaque characterisation with intravascular ultrasound backscatter: ex vivo validation. , 2007, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[63] Erik Meijering,et al. In Vivo Characterization and Quantification of Atherosclerotic Carotid Plaque Components With Multidetector Computed Tomography and Histopathological Correlation , 2006, Arteriosclerosis, thrombosis, and vascular biology.
[64] V. Fuster,et al. Relationships Among Regional Arterial Inflammation, Calcification, Risk Factors, and Biomarkers: A Prospective Fluorodeoxyglucose Positron-Emission Tomography/Computed Tomography Imaging Study , 2009, Circulation. Cardiovascular imaging.
[65] P. Davies,et al. Flow-mediated endothelial mechanotransduction. , 1995, Physiological reviews.
[66] P. Libby. Inflammation in atherosclerosis , 2002, Nature.
[67] J. Wykrzykowska,et al. Imaging of Inflamed and Vulnerable Plaque in Coronary Arteries with 18F-FDG PET/CT in Patients with Suppression of Myocardial Uptake Using a Low-Carbohydrate, High-Fat Preparation , 2009, Journal of Nuclear Medicine.
[68] G. Raff,et al. Diagnostic accuracy of noninvasive coronary angiography using 64-slice spiral computed tomography. , 2005, Journal of the American College of Cardiology.
[69] Chun Yuan,et al. In vivo accuracy of multispectral magnetic resonance imaging for identifying lipid-rich necrotic cores and intraplaque hemorrhage in advanced human carotid plaques. , 2002 .
[70] D C Barratt,et al. Accuracy of an electromagnetic three-dimensional ultrasound system for carotid artery imaging. , 2001, Ultrasound in medicine & biology.
[71] Konstantin Nikolaou,et al. Quantification of obstructive and nonobstructive coronary lesions by 64-slice computed tomography: a comparative study with quantitative coronary angiography and intravascular ultrasound. , 2005, Journal of the American College of Cardiology.
[72] Jonathan R Lindner,et al. Molecular imaging with targeted contrast ultrasound. , 2007, Current opinion in biotechnology.
[73] Gian Luigi Lenzi,et al. Detection of Carotid Adventitial Vasa Vasorum and Plaque Vascularization With Ultrasound Cadence Contrast Pulse Sequencing Technique and Echo-Contrast Agent , 2007, Stroke.
[74] J. V. van Engelshoven,et al. Symptomatic Patients With Mild and Moderate Carotid Stenosis: Plaque Features at MRI and Association With Cardiovascular Risk Factors and Statin Use , 2010, Stroke.
[75] A. Naylor,et al. Angiogenesis and the atherosclerotic carotid plaque: association between symptomatology and plaque morphology , 1999, Journal of vascular surgery.
[76] P. Angelberger,et al. Autologous low-density lipoprotein labelling allows characterization of human atherosclerotic lesions in vivo as to presence of foam cells and endothelial coverage , 2004, European Journal of Nuclear Medicine.
[77] H. Strauss,et al. Detection of Monocyte Chemoattractant Protein-1 Receptor Expression in Experimental Atherosclerotic Lesions: An Autoradiographic Study , 2001, Circulation.
[78] C. Yuan,et al. Quantitative Evaluation of Carotid Plaque Composition by In Vivo MRI , 2004, Arteriosclerosis, thrombosis, and vascular biology.
[79] S. Neubauer,et al. Magnetic Resonance Imaging of Endothelial Adhesion Molecules in Mouse Atherosclerosis Using Dual-Targeted Microparticles of Iron Oxide , 2007, Arteriosclerosis, thrombosis, and vascular biology.
[80] E. Topol,et al. Recognition of the importance of embolization in atherosclerotic vascular disease. , 2000, Circulation.
[81] J. Jeng,et al. Characterization of plaques using 18F-FDG PET/CT in patients with carotid atherosclerosis and correlation with matrix metalloproteinase-1. , 2007, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[82] E. Edelman,et al. Role of endothelial shear stress in the natural history of coronary atherosclerosis and vascular remodeling: molecular, cellular, and vascular behavior. , 2007, Journal of the American College of Cardiology.
[83] M. Matsuzaki,et al. Detection of lipid-laden atherosclerotic plaque by wavelet analysis of radiofrequency intravascular ultrasound signals: in vitro validation and preliminary in vivo application. , 2005, Journal of the American College of Cardiology.
[84] Sergio Shiguemi Furuie,et al. Automatic measurement of carotid diameter and wall thickness in ultrasound images , 2002, Computers in Cardiology.
[85] Frits Mastik,et al. Current diagnostic modalities for vulnerable plaque detection. , 2007, Current pharmaceutical design.
[86] Pengfei Zhang,et al. Atherosclerotic plaque components characterization and macrophage infiltration identification by intravascular ultrasound elastography based on b-mode analysis: validation in vivo , 2010, The International Journal of Cardiovascular Imaging.
[87] Akiko Maehara,et al. A prospective natural-history study of coronary atherosclerosis. , 2011, The New England journal of medicine.
[88] R. Esenaliev,et al. Sensitivity of laser opto-acoustic imaging in detection of small deeply embedded tumors , 1999 .
[89] D. Bandyk,et al. Use of intravascular ultrasound as a "Quality Control" technique during carotid stent-angioplasty: are there risks to its use? , 2009, The Journal of cardiovascular surgery.
[90] M. Welch,et al. Molecular Imaging of Atherosclerotic Plaque with 64Cu-Labeled Natriuretic Peptide and PET , 2010, Journal of Nuclear Medicine.
[91] C. Caussin,et al. Characterization of vulnerable nonstenotic plaque with 16-slice computed tomography compared with intravascular ultrasound. , 2004, The American journal of cardiology.
[92] N. Wong,et al. Molecular imaging of matrix metalloproteinase in atherosclerotic lesions: resolution with dietary modification and statin therapy. , 2008, Journal of the American College of Cardiology.
[93] S Padayachee,et al. An objective method for grading ultrasound images of carotid artery plaques. , 2001, Ultrasound in medicine & biology.
[94] Umberto Morbiducci,et al. Shear-induced platelet activation and its relationship with blood flow topology in a numerical model of stenosed carotid bifurcation , 2012 .
[95] A. Naylor,et al. Carotid plaque instability and ischemic symptoms are linked to immaturity of microvessels within plaques. , 2007, Journal of vascular surgery.
[96] Martin J Graves,et al. Identification of Culprit Lesions After Transient Ischemic Attack by Combined 18F Fluorodeoxyglucose Positron-Emission Tomography and High-Resolution Magnetic Resonance Imaging , 2005, Stroke.
[97] Ralph Weissleder,et al. 18F-4V for PET-CT imaging of VCAM-1 expression in atherosclerosis. , 2009, JACC. Cardiovascular imaging.
[98] E. Halpern,et al. Characterization of Human Atherosclerosis by Optical Coherence Tomography , 2002, Circulation.
[99] F Prati,et al. Correlation between high frequency intravascular ultrasound and histomorphology in human coronary arteries , 2001, Heart.
[100] Lev Muchnik,et al. Diagnosis of thin-cap fibroatheromas by a self-contained intravascular magnetic resonance imaging probe in ex vivo human aortas and in situ coronary arteries. , 2005, Journal of the American College of Cardiology.
[101] Christof Karmonik,et al. Quantitation and Localization of Matrix Metalloproteinases and Their Inhibitors in Human Carotid Endarterectomy Tissues , 2006, Arteriosclerosis, thrombosis, and vascular biology.
[102] Wei Chen,et al. Endothelial mechanotransduction, nitric oxide and vascular inflammation , 2006, Journal of internal medicine.
[103] Piero Tortoli,et al. Toward a better quantitative measurement of aortic flow. , 2002, Ultrasound in medicine & biology.
[104] Pai-Chi Li,et al. In Vitro Evaluation of Ultrasound-Assisted Thrombolysis Using a Targeted Ultrasound Contrast Agent , 2009, 2008 IEEE Ultrasonics Symposium.
[105] M. Arai,et al. Noninvasive quantitative tissue characterization and two-dimensional color-coded map of human atherosclerotic lesions using ultrasound integrated backscatter: comparison between histology and integrated backscatter images. , 2001, Journal of the American College of Cardiology.
[106] D. Bluemke,et al. Non-invasive half millimetre 32 detector row computed tomography angiography accurately excludes significant stenoses in patients with advanced coronary artery disease and high calcium scores , 2005, Heart.
[107] Chun Yuan,et al. Quantitative Magnetic Resonance Imaging Analysis of Neovasculature Volume in Carotid Atherosclerotic Plaque , 2003, Circulation.
[108] Moyses Szklo,et al. Coronary calcium as a predictor of coronary events in four racial or ethnic groups. , 2008, The New England journal of medicine.
[109] L. Johnson,et al. Noninvasive monitoring the biology of atherosclerotic plaque development with radiolabeled annexin V and matrix metalloproteinase inhibitor in spontaneous atherosclerotic mice , 2010, Journal of nuclear cardiology : official publication of the American Society of Nuclear Cardiology.
[110] J. Fujimoto,et al. Assessment of coronary plaque with optical coherence tomography and high-frequency ultrasound. , 2000, The American journal of cardiology.
[111] Renu Virmani,et al. Pathology of the thin-cap fibroatheroma: a type of vulnerable plaque. , 2003, Journal of interventional cardiology.
[112] Yong Wang,et al. Differences of signal evolution of intraplaque hemorrhage and associated stenosis between symptomatic and asymptomatic atherosclerotic carotid arteries: an in vivo high-resolution magnetic resonance imaging follow-up study , 2010, The International Journal of Cardiovascular Imaging.
[113] Arno W. Hoes,et al. Common carotid intima-media thickness and risk of stroke and myocardial infarction: the Rotterdam Study. , 1997, Circulation.
[114] A. Al-nahhas,et al. The role of 18F-FDG PET in characterising disease activity in Takayasu arteritis , 2004, European Journal of Nuclear Medicine and Molecular Imaging.
[115] D. Mozaffarian,et al. Heart disease and stroke statistics--2011 update: a report from the American Heart Association. , 2011, Circulation.
[116] Steven B. Feinstein,et al. Vasa Vasorum and Plaque Neovascularization on Contrast-Enhanced Carotid Ultrasound Imaging Correlates With Cardiovascular Disease and Past Cardiovascular Events , 2010, Stroke.
[117] Roberto Chiesa,et al. Contrast-enhanced ultrasound imaging of intraplaque neovascularization in carotid arteries: correlation with histology and plaque echogenicity. , 2008, Journal of the American College of Cardiology.
[118] Akiko Maehara,et al. Morphologic and angiographic features of coronary plaque rupture detected by intravascular ultrasound. , 2002, Journal of the American College of Cardiology.
[119] Udo Hoffmann,et al. Arterial wall imaging: evaluation with 16-section multidetector CT in blood vessel phantoms and ex vivo coronary arteries. , 2006, Radiology.
[120] D. McPherson,et al. Intravascular ultrasound molecular imaging of atheroma components in vivo. , 2004, Journal of the American College of Cardiology.
[121] D B Plewes,et al. MR imaging of blood vessels with an intravascular coil , 1992, Journal of magnetic resonance imaging : JMRI.
[122] C. Yuan,et al. Plaque Rupture in the Carotid Artery Is Localized at the High Shear Stress Region: A Case Report , 2007, Stroke.
[123] W. Edwards,et al. Arterial calcification and not lumen stenosis is highly correlated with atherosclerotic plaque burden in humans: a histologic study of 723 coronary artery segments using nondecalcifying methodology. , 1998, Journal of the American College of Cardiology.
[124] Vasilis Ntziachristos,et al. Inflammation in Atherosclerosis: Visualizing Matrix Metalloproteinase Action in Macrophages In Vivo , 2006, Circulation.
[125] C. McCollough,et al. Radiation Dose Reduction in CT Coronary Angiography , 2010, Current cardiology reports.
[126] Anne L. Martel,et al. Characterization of Complicated Carotid Plaque With Magnetic Resonance Direct Thrombus Imaging in Patients With Cerebral Ischemia , 2003, Circulation.
[127] L. Landini,et al. In Vivo Radiofrequency‐Based Ultrasonic Tissue Characterization of the Atherosclerotic Plaque , 1993, Stroke.
[128] G. V. R. Born,et al. INFLUENCE OF PLAQUE CONFIGURATION AND STRESS DISTRIBUTION ON FISSURING OF CORONARY ATHEROSCLEROTIC PLAQUES , 1989, The Lancet.
[129] Piero Tortoli,et al. Clinical validation of common carotid artery wall distension assessment based on multigate Doppler processing. , 2005, Ultrasound in medicine & biology.
[130] C Yuan,et al. Phased‐Array Magnetic Resonance Imaging of the Carotid Artery Bifurcation: Preliminary Results in Healthy Volunteers and a Patient with Aherosclerotic Disease , 1995, Journal of magnetic resonance imaging : JMRI.
[131] Jacques Ohayon,et al. Necrotic core thickness and positive arterial remodeling index: emergent biomechanical factors for evaluating the risk of plaque rupture. , 2008, American journal of physiology. Heart and circulatory physiology.
[132] David Levitz,et al. Determination of optical scattering properties of highly-scattering media in optical coherence tomography images. , 2004, Optics express.
[133] Z. Fayad,et al. Evaluation of Matrix Metalloproteinases in Atherosclerosis Using a Novel Noninvasive Imaging Approach , 2008, Arteriosclerosis, thrombosis, and vascular biology.
[134] E. Tuzcu,et al. Coronary Plaque Classification With Intravascular Ultrasound Radiofrequency Data Analysis , 2002, Circulation.
[135] Sang-Wuk Jeong,et al. Molecular Imaging of Cathepsin B Proteolytic Enzyme Activity Reflects the Inflammatory Component of Atherosclerotic Pathology and Can Quantitatively Demonstrate the Antiatherosclerotic Therapeutic Effects of Atorvastatin and Glucosamine , 2009, Molecular imaging.
[136] S. Feinstein,et al. The powerful microbubble: from bench to bedside, from intravascular indicator to therapeutic delivery system, and beyond. , 2004, American journal of physiology. Heart and circulatory physiology.
[137] M. Sheppard,et al. Combined imaging, computational and histological analysis of a ruptured carotid plaque: A patient-specific analysis , 2010 .
[138] D. Gladstone,et al. Moderate carotid artery stenosis: MR imaging-depicted intraplaque hemorrhage predicts risk of cerebrovascular ischemic events in asymptomatic men. , 2009, Radiology.
[139] P. Serruys,et al. Characterizing Vulnerable Plaque Features With Intravascular Elastography , 2003, Circulation.
[140] C Yuan,et al. Surface coil phased arrays for high‐resolution imaging of the carotid arteries , 1996, Journal of magnetic resonance imaging : JMRI.
[141] P. Touboul,et al. Use of monitoring software to improve the measurement of carotid wall thickness by B-mode imaging , 1992, Journal of hypertension. Supplement : official journal of the International Society of Hypertension.
[142] Science to practice: can CT be performed for multicolor molecular imaging? , 2010, Radiology.
[143] Chenyang Xu,et al. Characterization of atherosclerosis plaques by measuring both backscattering and attenuation coefficients in optical coherence tomography. , 2008, Journal of biomedical optics.
[144] G. Sangiorgi,et al. Role of Inflammation in Atherosclerosis* , 2007, Journal of Nuclear Medicine.
[145] C. Yuan,et al. Visualization of Fibrous Cap Thickness and Rupture in Human Atherosclerotic Carotid Plaque In Vivo With High-Resolution Magnetic Resonance Imaging , 2000, Circulation.
[146] Fei Liu,et al. MRI of atherosclerosis in clinical trials , 2006, NMR in biomedicine.
[147] Martin J Graves,et al. The ATHEROMA (Atorvastatin Therapy: Effects on Reduction of Macrophage Activity) Study. Evaluation using ultrasmall superparamagnetic iron oxide-enhanced magnetic resonance imaging in carotid disease. , 2009, Journal of the American College of Cardiology.
[148] Matthias F Kriegel,et al. Assessment of coronary plaque progression in coronary computed tomography angiography using a semiquantitative score. , 2009, JACC. Cardiovascular imaging.