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Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors
BACKGROUND: There is increasing interest in Positron Emission Tomography (PET) of 2-deoxy-2-[18F]flouro-D-glucose ((18)F-FDG) to evaluate pulmonary inflammation during acute lung injury (ALI). We assessed the effect of extra-vascular lung water on estimates of (18)F-FDG-kinetics parameters in experi...
Autores principales: | , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2012
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3485257/ https://www.ncbi.nlm.nih.gov/pubmed/23118881 http://dx.doi.org/10.1371/journal.pone.0047588 |
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author | Dittrich, A. Susanne Winkler, Tilo Wellman, Tyler de Prost, Nicolas Musch, Guido Harris, R. Scott Vidal Melo, Marcos F. |
author_facet | Dittrich, A. Susanne Winkler, Tilo Wellman, Tyler de Prost, Nicolas Musch, Guido Harris, R. Scott Vidal Melo, Marcos F. |
author_sort | Dittrich, A. Susanne |
collection | PubMed |
description | BACKGROUND: There is increasing interest in Positron Emission Tomography (PET) of 2-deoxy-2-[18F]flouro-D-glucose ((18)F-FDG) to evaluate pulmonary inflammation during acute lung injury (ALI). We assessed the effect of extra-vascular lung water on estimates of (18)F-FDG-kinetics parameters in experimental and simulated data using the Patlak and Sokoloff methods, and our recently proposed four-compartment model. METHODOLOGY/PRINCIPAL FINDINGS: Eleven sheep underwent unilateral lung lavage and 4 h mechanical ventilation. Five sheep received intravenous endotoxin (10 ng/kg/min). Dynamic (18)F-FDG PET was performed at the end of the 4 h period. (18)F-FDG net uptake rate (Ki), phosphorylation rate (k(3)), and volume of distribution (F(e)) were estimated in three isogravitational regions for each method. Simulations of normal and ALI (18)F-FDG-kinetics were conducted to study the dependence of estimated parameters on the transport rate constants to (k(5)) and from (k(6)) the extra-vascular extra-cellular compartment. The four-compartment model described 85.7% of the studied (18)F-FDG-kinetics better than the Sokoloff model. Relative to the four-compartment model the Sokoloff model exhibited a consistent positive bias in Ki (3.32 [1.30–5.65] 10(−4)/min, p<0.001) and showed inaccurate estimates of the parameters composing Ki (k(3) and F(e)), even when Ki was similar for those methods. In simulations, errors in estimates of Ki due to the extra-vascular extra-cellular compartment depended on both k(5) and k(5)/k(6), with errors for the Patlak and Sokoloff methods of 0.02 [−0.01–0.18] and 0.40 [0.18–0.60] 10(−3)/min for normal lungs and of −0.47 [−0.89–0.72] and 2.35 [0.85–3.68] 10(−3)/min in ALI. CONCLUSIONS/SIGNIFICANCE: (18)F-FDG accumulation in lung extra-vascular fluid, which is commonly increased during lung injury, can result in substantial estimation errors using the traditional Patlak and Sokoloff methods. These errors depend on the extra-vascular extra-cellular compartment volume and its transport rates with other compartments. The four-compartment model provides more accurate quantification of (18)F-FDG-kinetics than those methods in the presence of increased extra-vascular fluid. |
format | Online Article Text |
id | pubmed-3485257 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2012 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-34852572012-11-01 Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors Dittrich, A. Susanne Winkler, Tilo Wellman, Tyler de Prost, Nicolas Musch, Guido Harris, R. Scott Vidal Melo, Marcos F. PLoS One Research Article BACKGROUND: There is increasing interest in Positron Emission Tomography (PET) of 2-deoxy-2-[18F]flouro-D-glucose ((18)F-FDG) to evaluate pulmonary inflammation during acute lung injury (ALI). We assessed the effect of extra-vascular lung water on estimates of (18)F-FDG-kinetics parameters in experimental and simulated data using the Patlak and Sokoloff methods, and our recently proposed four-compartment model. METHODOLOGY/PRINCIPAL FINDINGS: Eleven sheep underwent unilateral lung lavage and 4 h mechanical ventilation. Five sheep received intravenous endotoxin (10 ng/kg/min). Dynamic (18)F-FDG PET was performed at the end of the 4 h period. (18)F-FDG net uptake rate (Ki), phosphorylation rate (k(3)), and volume of distribution (F(e)) were estimated in three isogravitational regions for each method. Simulations of normal and ALI (18)F-FDG-kinetics were conducted to study the dependence of estimated parameters on the transport rate constants to (k(5)) and from (k(6)) the extra-vascular extra-cellular compartment. The four-compartment model described 85.7% of the studied (18)F-FDG-kinetics better than the Sokoloff model. Relative to the four-compartment model the Sokoloff model exhibited a consistent positive bias in Ki (3.32 [1.30–5.65] 10(−4)/min, p<0.001) and showed inaccurate estimates of the parameters composing Ki (k(3) and F(e)), even when Ki was similar for those methods. In simulations, errors in estimates of Ki due to the extra-vascular extra-cellular compartment depended on both k(5) and k(5)/k(6), with errors for the Patlak and Sokoloff methods of 0.02 [−0.01–0.18] and 0.40 [0.18–0.60] 10(−3)/min for normal lungs and of −0.47 [−0.89–0.72] and 2.35 [0.85–3.68] 10(−3)/min in ALI. CONCLUSIONS/SIGNIFICANCE: (18)F-FDG accumulation in lung extra-vascular fluid, which is commonly increased during lung injury, can result in substantial estimation errors using the traditional Patlak and Sokoloff methods. These errors depend on the extra-vascular extra-cellular compartment volume and its transport rates with other compartments. The four-compartment model provides more accurate quantification of (18)F-FDG-kinetics than those methods in the presence of increased extra-vascular fluid. Public Library of Science 2012-10-31 /pmc/articles/PMC3485257/ /pubmed/23118881 http://dx.doi.org/10.1371/journal.pone.0047588 Text en © 2012 Dittrich et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Dittrich, A. Susanne Winkler, Tilo Wellman, Tyler de Prost, Nicolas Musch, Guido Harris, R. Scott Vidal Melo, Marcos F. Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors |
title | Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors |
title_full | Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors |
title_fullStr | Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors |
title_full_unstemmed | Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors |
title_short | Modeling (18)F-FDG Kinetics during Acute Lung Injury: Experimental Data and Estimation Errors |
title_sort | modeling (18)f-fdg kinetics during acute lung injury: experimental data and estimation errors |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3485257/ https://www.ncbi.nlm.nih.gov/pubmed/23118881 http://dx.doi.org/10.1371/journal.pone.0047588 |
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