Improving MR quantification of regional blood volume with intravascular T1 contrast agents: Accuracy, precision, and water exchange
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B R Rosen | K K Kwong | R M Weisskoff | R. Weisskoff | J. Mandeville | K. Kwong | D. Chesler | K. Donahue | D A Chesler | K M Donahue | J B Mandeville | A A Bogdanov | B. Rosen | Robert M. Weisskoff | A. Bogdanov | David A. Chesler
[1] W. Hinson,et al. NMR spin-lattice relaxation in tissues with high concentration of paramagnetic contrast media: evaluation of water exchange rates in intact rat muscle. , 1991, Medical physics.
[2] J. Folkman,et al. How is blood vessel growth regulated in normal and neoplastic tissue? G.H.A. Clowes memorial Award lecture. , 1986, Cancer research.
[3] M E Moseley,et al. Magnetic resonance imaging of myocardial infarction using albumin-(Gd-DTPA), a macromolecular blood-volume contrast agent in a rat model. , 1987, Investigative radiology.
[4] C F Hazlewood,et al. Nuclear magnetic resonance transverse relaxation times of water protons in skeletal muscle. , 1974, Biophysical journal.
[5] W J Manning,et al. Studies of Gd‐DTPA relaxivity and proton exchange rates in tissue , 1994, Magnetic resonance in medicine.
[6] K. Schulten,et al. Theory of contrast agents in magnetic resonance imaging: Coupling of spin relaxation and transport , 1992, Magnetic resonance in medicine.
[7] D M Shames,et al. Measurement of capillary permeability to macromolecules by dynamic magnetic resonance imaging: A quantitative noninvasive technique , 1993, Magnetic resonance in medicine.
[8] C. Higgins,et al. Inversion recovery EPI of bolus transit in rat myocardium using intravascular and extravascular gadolinium‐based MR contrast media: Dose effects on peak signal enhancement , 1994, Magnetic resonance in medicine.
[9] D M Shames,et al. Quantification of tissue plasma volume in the rat by contrast‐enhanced magnetic resonance imaging , 1993, Magnetic resonance in medicine.
[10] R. Judd,et al. Effects of Myocardial Water Exchange on T1 Enhancement during Bolus Administration of MR Contrast Agents , 1995, Magnetic resonance in medicine.
[11] R. Brasch,et al. Quantification of liver blood volume: comparison of ultra short ti inversion recovery echo planar imaging (ulstir‐epi), with dynamic 3d‐gradient recalled echo imaging , 1995, Magnetic resonance in medicine.
[12] R Weissleder,et al. A new macromolecule as a contrast agent for MR angiography: preparation, properties, and animal studies. , 1993, Radiology.
[13] B. Rosen,et al. Functional mapping of the human visual cortex by magnetic resonance imaging. , 1991, Science.
[14] G L Wolf,et al. Relaxation of water protons in the intra‐ and extracellular regions of blood containing Gd(DTPA) , 1986, Magnetic resonance in medicine.
[15] C. Sotak,et al. Quantitative dependence of MR signal intensity on tissue concentration of Gd(HP-DO3A) in the nephrectomized rat. , 1992, Magnetic resonance imaging.
[16] M. Moseley,et al. Detection of zonal renal ischemia with contrast‐enhanced MR imaging with a macromolecular blood pool contrast agent , 1992, Journal of magnetic resonance imaging : JMRI.
[17] C. Rose,et al. The capillary and sarcolemmal barriers in the heart. An exploration of labeled water permeability. , 1977, Circulation research.
[18] A. McLaughlin,et al. Relaxation times in systems with chemical exchange: Approximate solutions for the nondilute case , 1973 .
[19] A. Haase,et al. Quantification of regional blood volumes by rapid T1 mapping , 1993, Magnetic resonance in medicine.
[20] David Norman,et al. Hypercarbia‐induced changes in cerebral blood volume in the cat: A 1H MRI and intravascular contrast agent study , 1992, Magnetic resonance in medicine.