αVβ3 integrin-targeted microSPECT/CT imaging of inflamed atherosclerotic plaques in mice
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Anne Bol | Bernhard Gerber | Caroline Bouzin | David Vancraeynest | Anne-Catherine Pouleur | Jean-Louis Vanoverschelde | François Jamar | Vanesa Bol | François-Xavier Hanin | B. Gerber | S. Walrand | A. Pasquet | F. Jamar | A. Pouleur | J. Vanoverschelde | V. Bol | C. Bouzin | V. Roelants | A. Bol | P. Lesnik | Agnès Pasquet | T. Huby | D. Vancraeynest | Thierry Huby | Philippe Lesnik | Véronique Roelants | Stephan Walrand | F. Hanin | Vanesa Bol
[1] Avani A. Pendse,et al. Apolipoprotein E knock-out and knock-in mice: atherosclerosis, metabolic syndrome, and beyond This work was supported by National Institutes of Health Grant HL-042630. Published, JLR Papers in Press, December 5, 2008. , 2009, Journal of Lipid Research.
[2] A. Davies,et al. Imaging intraplaque inflammation in carotid atherosclerosis with 11C-PK11195 positron emission tomography/computed tomography. , 2012, European heart journal.
[3] Alfons Verbruggen,et al. Molecular imaging of alpha v beta3 integrin expression in atherosclerotic plaques with a mimetic of RGD peptide grafted to Gd-DTPA. , 2008, Cardiovascular research.
[4] F. Kolodgie,et al. Regulation of Macrophage Foam Cell Formation by αVβ3 Integrin : Potential Role in Human Atherosclerosis , 2004 .
[5] S. Walrand,et al. Evaluation of novel whole-body high-resolution rodent SPECT (Linoview) based on direct acquisition of linogram projections. , 2005, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[6] A. Walch,et al. Evaluation of &agr;v&bgr;3 Integrin-Targeted Positron Emission Tomography Tracer 18F-Galacto-RGD for Imaging of Vascular Inflammation in Atherosclerotic Mice , 2009, Circulation. Cardiovascular imaging.
[7] Markus Schwaiger,et al. Imaging of integrin αvβ3 expression , 2008, Cancer and Metastasis Reviews.
[8] M. Reiser,et al. 18F-FDG PET/CT Identifies Patients at Risk for Future Vascular Events in an Otherwise Asymptomatic Cohort with Neoplastic Disease , 2009, Journal of Nuclear Medicine.
[9] Renu Virmani,et al. Pathology of the vulnerable plaque. , 2007, Journal of the American College of Cardiology.
[10] J. Breslow,et al. Human apolipoprotein A-I gene expression increases high density lipoprotein and suppresses atherosclerosis in the apolipoprotein E-deficient mouse. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[11] Jonghwa Lee,et al. SPECT/CT Imaging of High-Risk Atherosclerotic Plaques using Integrin-Binding RGD Dimer Peptides , 2015, Scientific Reports.
[12] A. Fangberget,et al. Integrin receptor imaging of breast cancer: a proof-of-concept study to evaluate 99mTc-NC100692. , 2006, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[13] C. Alpers,et al. αvβ3 Integrin Expression in Normal and Atherosclerotic Artery , 1995 .
[14] Agnes Pasquet,et al. Imaging the vulnerable plaque. , 2011, Journal of the American College of Cardiology.
[15] X. Papademetris,et al. Serial Noninvasive Targeted Imaging of Peripheral Angiogenesis: Validation and Application of a Semiautomated Quantitative Approach , 2009, Journal of Nuclear Medicine.
[16] T. Brady,et al. Measurement of arterial activity on routine FDG PET/CT images improves prediction of risk of future CV events. , 2013, JACC. Cardiovascular imaging.
[17] Eran Leitersdorf,et al. Atherosclerosis in the apolipoprotein-E-deficient mouse: a decade of progress. , 2004, Arteriosclerosis, thrombosis, and vascular biology.
[18] A. Sinusas,et al. Integrin-Targeted Imaging of Inflammation in Vascular Remodeling , 2011, Arteriosclerosis, thrombosis, and vascular biology.
[19] P. Jones,et al. 99mTc-NC100692--a tracer for imaging vitronectin receptors associated with angiogenesis: a preclinical investigation. , 2008, Nuclear medicine and biology.
[20] Albert J. Sinusas,et al. Noninvasive Imaging of Angiogenesis With a 99mTc-Labeled Peptide Targeted at &agr;v&bgr;3 Integrin After Murine Hindlimb Ischemia , 2005 .
[21] M. Schwaiger,et al. PET/CT imaging of integrin αvβ3 expression in human carotid atherosclerosis. , 2014, JACC. Cardiovascular imaging.
[22] M. Dweck,et al. 18F-fluoride positron emission tomography for identification of ruptured and high-risk coronary atherosclerotic plaques: a prospective clinical trial , 2014, The Lancet.
[23] B. Gerber,et al. A Randomized Trial on the Optimization of 18F-FDG Myocardial Uptake Suppression: Implications for Vulnerable Coronary Plaque Imaging , 2014, Journal of Nuclear Medicine.
[24] V. Fuster,et al. Coronary plaque disruption. , 1995, Circulation.
[25] A. Sinusas,et al. Analysis of angiogenesis induced by local IGF-1 expression after myocardial infarction using microSPECT-CT imaging. , 2010, Journal of molecular and cellular cardiology.
[26] Pankaj Garg,et al. Arithmetic of vulnerable plaques for noninvasive imaging , 2008, Nature Clinical Practice Cardiovascular Medicine.
[27] D. Berman,et al. New cardiac cameras: single-photon emission CT and PET. , 2014, Seminars in nuclear medicine.
[28] Samuel A. Wickline,et al. Molecular Imaging of Angiogenesis in Early-Stage Atherosclerosis With &agr;v&bgr;3-Integrin–Targeted Nanoparticles , 2003 .