Image-Derived Input Function from the Vena Cava for 18F-FDG PET Studies in Rats and Mice
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[1] R. Fontaine,et al. System Architecture of the LabPET Small Animal PET Scanner , 2008, IEEE Transactions on Nuclear Science.
[2] E. Hoffman,et al. Calculation of positron range and its effect on the fundamental limit of positron emission tomography system spatial resolution. , 1999, Physics in medicine and biology.
[3] Yu-Hua Dean Fang,et al. Spillover and Partial-Volume Correction for Image-Derived Input Functions for Small-Animal 18F-FDG PET Studies , 2008, Journal of Nuclear Medicine.
[4] R A Brooks,et al. Alternative formula for glucose utilization using labeled deoxyglucose. , 1982, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[5] Kewei Chen,et al. An input function estimation method for FDG-PET human brain studies. , 2007, Nuclear medicine and biology.
[6] R. Lecomte,et al. MLEM Reconstructed Image Resolution from the LabPET Animal Scanner , 2006, 2006 IEEE Nuclear Science Symposium Conference Record.
[7] M. Reivich,et al. THE [14C]DEOXYGLUCOSE METHOD FOR THE MEASUREMENT OF LOCAL CEREBRAL GLUCOSE UTILIZATION: THEORY, PROCEDURE, AND NORMAL VALUES IN THE CONSCIOUS AND ANESTHETIZED ALBINO RAT 1 , 1977, Journal of neurochemistry.
[8] E. Meyer. Simultaneous correction for tracer arrival delay and dispersion in CBF measurements by the H215O autoradiographic method and dynamic PET. , 1989, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[9] R. Fontaine,et al. The Hardware and Signal Processing Architecture of LabPET™, a Small Animal APD-Based Digital PET Scanner , 2009, IEEE Transactions on Nuclear Science.
[10] M. Bentourkia,et al. Kinetic Modeling of FDG uptake in rat tumors During photodynamic therapy , 2006, 2006 IEEE Nuclear Science Symposium Conference Record.
[11] R. Fontaine,et al. Performance evaluation of the LabPET™ APD-based digital PET scanner , 2009, 2007 IEEE Nuclear Science Symposium Conference Record.
[12] M. Wallwiener,et al. Microsurgical training in a rat model: an approach and concept for gynecological surgeons , 2010, The journal of obstetrics and gynaecology research.
[13] R. Fontaine,et al. The architecture of LabPET/spl trade/, a small animal APD-based digital PET scanner , 2005, IEEE Nuclear Science Symposium Conference Record, 2005.
[14] Roger Lecomte,et al. A New Tool for Molecular Imaging: The Microvolumetric β Blood Counter , 2007, Journal of Nuclear Medicine.
[15] Sung-Cheng Huang,et al. In Vivo Quantitation of Glucose Metabolism in Mice Using Small-Animal PET and a Microfluidic Device , 2007, Journal of Nuclear Medicine.
[16] M. Phelps,et al. PET: the merging of biology and imaging into molecular imaging. , 2000, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[17] C S Patlak,et al. Graphical Evaluation of Blood-to-Brain Transfer Constants from Multiple-Time Uptake Data , 1983, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[18] L. Sokoloff,et al. Local glucose utilization and local blood flow in hearts of awake rats , 1993, Basic Research in Cardiology.
[19] A new tool for molecular imaging: the microvolumetric beta blood counter. , 2007, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[20] E. Hoffman,et al. TOMOGRAPHIC MEASUREMENT OF LOCAL CEREBRAL GLUCOSE METABOLIC RATE IN HUMANS WITH (F‐18)2‐FLUORO-2‐DEOXY-D‐GLUCOSE: VALIDATION OF METHOD , 1980, Annals of neurology.
[21] A A Lammertsma,et al. Image-derived input functions for determination of MRGlu in cardiac (18)F-FDG PET scans. , 2001, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[22] Michael E. Phelps,et al. Quantification of Cerebral Glucose Metabolic Rate in Mice Using 18F-FDG and Small-Animal PET , 2009, Journal of Nuclear Medicine.
[23] Cyrill Burger,et al. A femoral arteriovenous shunt facilitates arterial whole blood sampling in animals , 2002, European Journal of Nuclear Medicine and Molecular Imaging.
[24] R Kozak,et al. An absorptiometry method for the determination of arterial blood concentration of injected iodinated contrast agent. , 1992, Physics in medicine and biology.
[25] I. Buvat,et al. Determination of blood curve and tissue uptake from left ventricle using FADS in rat FDG-PET studies , 1999, 1999 IEEE Nuclear Science Symposium. Conference Record. 1999 Nuclear Science Symposium and Medical Imaging Conference (Cat. No.99CH37019).
[26] I. Kanno,et al. Error Analysis of a Quantitative Cerebral Blood Flow Measurement Using H215O Autoradiography and Positron Emission Tomography, with Respect to the Dispersion of the Input Function , 1986, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[27] Philippe Hantraye,et al. Arterial input function measurement without blood sampling using a beta-microprobe in rats. , 2004, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[28] Jurgen Seidel,et al. Measurement of cerebral glucose metabolic rates in the anesthetized rat by dynamic scanning with 18F-FDG, the ATLAS small animal PET scanner, and arterial blood sampling. , 2004, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[29] F. Foster,et al. Comprehensive transthoracic cardiac imaging in mice using ultrasound biomicroscopy with anatomical confirmation by magnetic resonance imaging. , 2004, Physiological genomics.
[30] Yuan-Chuan Tai,et al. Minimally invasive method of determining blood input function from PET images in rodents. , 2006, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[31] J. Weitz,et al. Inferior Vena Cava Ligation Rapidly Induces Tissue Factor Expression and Venous Thrombosis in Rats , 2009, Arteriosclerosis, thrombosis, and vascular biology.
[32] Albert Gjedde,et al. Chapter 15 - Dispersion Correction for Automatic Sampling of O-15-Labeled H 2 O and Red Blood Cells , 1996 .
[33] M. Phelps,et al. Parametric images of myocardial metabolic rate of glucose generated from dynamic cardiac PET and 2-[18F]fluoro-2-deoxy-d-glucose studies. , 1991, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[34] C. Patlak,et al. Graphical Evaluation of Blood-to-Brain Transfer Constants from Multiple-Time Uptake Data. Generalizations , 1985, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[35] L. Sokoloff,et al. Operational lumped constant for FDG in normal adult male rats. , 2007, Journal of Nuclear Medicine.
[36] Magdalena Rafecas,et al. Development and Validation of a GATE Simulation Model for the LabPET Scanner , 2008, IEEE Transactions on Nuclear Science.
[37] Philipp T. Meyer,et al. Simplified quantification of small animal [18F]FDG PET studies using a standard arterial input function , 2006, European Journal of Nuclear Medicine and Molecular Imaging.
[38] R. Ackermann,et al. Regional comparison of the lumped constants of deoxyglucose and fluorodeoxyglucose , 1989, Metabolic Brain Disease.
[39] A. Luxen,et al. Use of a beta microprobe system to measure arterial input function in PET via an arteriovenous shunt in rats , 2011, EJNMMI research.