The Influence of Tissue Heterogeneity on Results of Fitting Nonlinear Model Equations to Regional Tracer Uptake Curves: With an Application to Compartmental Models Used in Positron Emission Tomography
- 1 April 1987
- journal article
- research article
- Published by SAGE Publications in Journal of Cerebral Blood Flow & Metabolism
- Vol. 7 (2) , 214-229
- https://doi.org/10.1038/jcbfm.1987.47
Abstract
An analytical method based on Taylor expansions was developed to analyze errors caused by tissue heterogeneity in dynamic positron emission tomography (PET) measurements. Some general rules concerning the effect of parameter variances and covariances were derived. The method was further applied to various compartmental models currently used for measurement of blood flow, capillary permeability, glucose metabolism, and tracer binding. Blood flow and capillary permeability are shown to be generally underestimated in heterogenous tissue, the underestimation being more severe for slowly decaying, constant or increasing input functions rather than for bolus input, and increasing with measurement time. Typical errors caused by the heterogeneity due to insufficient separation between gray and white matter by a PET scanner with full width at half-maximum (FWHM)= 5 to 10 mm resolution range between–0.9 and–6% in dynamic CBF measurements with intravenous (i. v.) bolus injection of 15O-water or inhalation of 18F-fluoromethane and total measurement times of6 or 10 min, respectively. Binding or metabolic rates determined with tracers that are essentially trapped in tissue (e.g., FDG for measurement of cerebral glucose metabolism) are only slightly overestimated (0.5–3.0%) at typical measurement times and are essentially independent of the shape of the input function. The error increases considerably if tracer accumulation is very slow, however, or if short measurement times [<5/(k2 + k3)] are used. Some rate constants are also subject to larger errors.Keywords
This publication has 27 references indexed in Scilit:
- Weighted Integration Method for Local Cerebral Blood Flow Measurements with Positron Emission TomographyJournal of Cerebral Blood Flow & Metabolism, 1986
- Computer Assisted Mapping in Quantitative Analysis of Cerebral Positron Emission TomogramsJournal of Computer Assisted Tomography, 1985
- A Kinetic Evaluation of Blood—Brain Barrier Permeability in Human Brain Tumors with [68Ga]EDTA and Positron Computed TomographyJournal of Cerebral Blood Flow & Metabolism, 1984
- Regional Kinetic Constants and Cerebral Metabolic Rate for Glucose in Normal Human Volunteers Determined by Dynamic Positron Emission Tomography of [18F]-2-Fluoro-2-Deoxy-D-GlucoseJournal of Cerebral Blood Flow & Metabolism, 1984
- Strategy for the Measurement of Regional Cerebral Blood Flow Using Short-Lived Tracers and Emission TomographyJournal of Cerebral Blood Flow & Metabolism, 1984
- Local Brain Protein Metabolism in Dementia and Schizophrenia: In Vivo Studies with 11C-L-Methionine and Positron Emission TomographyPublished by Springer Nature ,1983
- CAPILLARY PERMEABILITY OF HETEROGENEOUS ORGANS: A PARSIMONIOUS INTERPRETATION OF INDICATOR DIFFUSION DATAClinical and Experimental Pharmacology and Physiology, 1982
- Effect of Ischemia on Quantification of Local Cerebral Glucose Metabolic Rate in ManJournal of Cerebral Blood Flow & Metabolism, 1981
- A Concurrent Flow Model for Extraction during Transcapillary PassageCirculation Research, 1974
- Stochastic flow in capillary blood vesselsMicrovascular Research, 1973