Evidence for shutter-speed variation in CR bolus-tracking studies of human pathology
- 1 December 2004
- journal article
- research article
- Published by Wiley in NMR in Biomedicine
- Vol. 18 (3) , 173-185
- https://doi.org/10.1002/nbm.938
Abstract
The standard pharmacokinetic model for the analysis of MRI contrast reagent (CR) bolus‐tracking (B‐T) data assumes that the mean intracellular water molecule lifetime (τi) is effectively zero. This assertion is inconsistent with a considerable body of physiological measurements. Furthermore, theory and simulation show the B‐T time‐course shape to be very sensitive to the τi magnitude in the physiological range (hundreds of milliseconds to several seconds). Consequently, this standard model aspect can cause significant underestimations (factors of 2 or 3) of the two parameters usually determined: Ktrans, the vascular wall CR transfer rate constant, and ve, the CR distribution volume (the extracellular, extravascular space fraction). Analyses of animal model data confirmed two predicted behaviors indicative of this standard model inadequacy: (1) a specific temporal pattern for the mismatch between the best‐fitted curve and data; and (2) an inverse dependence of the curve's Ktrans and ve magnitudes on the CR dose. These parameters should be CR dose‐independent. The most parsimonious analysis allowing for realistic τi values is the ‘shutter‐speed’ model. Its application to the experimental animal data essentially eliminated the two standard model signature inadequacies. This paper reports the first survey for the extent of this ‘shutter‐speed effect’ in human data. Retrospective analyses are made of clinical data chosen from a range of pathology (the active multiple sclerosis lesion, the invasive ductal carcinoma breast tumor, and osteosarcoma in the leg) that provides a wide variation, particularly of Ktrans. The signature temporal mismatch of the standard model is observed in all cases, and is essentially eliminated by use of the shutter‐speed model. Pixel‐by‐pixel maps show that parameter values from the shutter‐speed analysis are increased by more than a factor of 3 for some lesion regions. This endows the lesions with very high contrast, and reveals heterogeneities that are often not seen in the standard model maps. Normal muscle regions in the leg allow validation of the shutter‐speed model Ktrans, ve, and τi magnitudes, by comparison with results of previous careful rat leg studies not possible for human subjects. Copyright © 2004 John Wiley & Sons, Ltd.Keywords
This publication has 27 references indexed in Scilit:
- Simultaneous measurement of arterial input function and tumor pharmacokinetics in mice by dynamic contrast enhanced imaging: Effects of transcytolemmal water exchangeMagnetic Resonance in Medicine, 2004
- Variation of the relaxographic “shutter‐speed” for transcytolemmal water exchange affects the CR bolus‐tracking curve shapeMagnetic Resonance in Medicine, 2003
- Diffusion in compartmental systems. II. Diffusion‐weighted measurements of rat brain tissue in vivo and postmortem at very large b‐valuesMagnetic Resonance in Medicine, 2003
- Equilibrium water exchange between the intra‐ and extracellular spaces of mammalian brainMagnetic Resonance in Medicine, 2003
- Osteogenic and Ewing Sarcomas: Estimation of Necrotic Fraction during Induction Chemotherapy with Dynamic Contrast-enhanced MR ImagingRadiology, 2003
- Functional tumor imaging with dynamic contrast‐enhanced magnetic resonance imagingJournal of Magnetic Resonance Imaging, 2003
- Manganese ions as intracellular contrast agents: proton relaxation and calcium interactions in rat myocardiumNMR in Biomedicine, 2003
- Equilibrium transcytolemmal water-exchange kinetics in skeletal muscle in vivoMagnetic Resonance in Medicine, 1999
- Estimating kinetic parameters from dynamic contrast-enhanced t1-weighted MRI of a diffusable tracer: Standardized quantities and symbolsJournal of Magnetic Resonance Imaging, 1999
- Modeling tracer kinetics in dynamic Gd‐DTPA MR imagingJournal of Magnetic Resonance Imaging, 1997