Image-derived input function in dynamic human PET/CT: methodology and validation with 11C-acetate and 18F-fluorothioheptadecanoic acid in muscle and 18F-fluorodeoxyglucose in brain

被引:72
作者
Croteau, Etienne [6 ,7 ]
Lavallee, Eric [6 ,7 ]
Labbe, Sebastien M. [4 ]
Hubert, Laurent [6 ,7 ]
Pifferi, Fabien [3 ,5 ]
Rousseau, Jacques A. [6 ,7 ]
Cunnane, Stephen C. [4 ,5 ]
Carpentier, Andre C. [4 ]
Lecomte, Roger [6 ,7 ]
Benard, Francois [1 ,2 ]
机构
[1] BC Canc Agcy, Vancouver, BC V5Z 1L3, Canada
[2] Univ British Columbia, Dept Radiol, Div Nucl Med, Vancouver, BC, Canada
[3] MNHN CNRS, Brunoy, France
[4] Univ Sherbrooke, Ctr Hosp, Dept Med, Sherbrooke, PQ J1K 2R1, Canada
[5] Univ Sherbrooke, Res Ctr Aging, Sherbrooke, PQ J1K 2R1, Canada
[6] Univ Sherbrooke, Ctr Hosp, Clin Etienne LeBel, Ctr Rech,Sherbrooke Mol Imaging Ctr, Sherbrooke, PQ J1K 2R1, Canada
[7] Univ Sherbrooke, Dept Med Nucl & Radiobiol, Fac Med & Hlth Sci, Sherbrooke, PQ J1K 2R1, Canada
基金
加拿大健康研究院; 加拿大自然科学与工程研究理事会;
关键词
Positron emission tomography; Tracer kinetic modelling; Image-derived input function; POSITRON-EMISSION-TOMOGRAPHY; INDEPENDENT COMPONENT ANALYSIS; MYOCARDIAL OXYGEN-CONSUMPTION; GLUCOSE METABOLIC-RATE; BLOOD-FLOW; NONINVASIVE QUANTIFICATION; GRAPHICAL ANALYSIS; FEMORAL-ARTERY; F-18-FDG PET; FDG-PET;
D O I
10.1007/s00259-010-1443-z
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Despite current advances in PET/CT systems, blood sampling still remains the standard method to obtain the radiotracer input function for tracer kinetic modelling. The purpose of this study was to validate the use of image-derived input functions (IDIF) of the carotid and femoral arteries to measure the arterial input function (AIF) in PET imaging. The data were obtained from two different research studies, one using F-18-FDG for brain imaging and the other using C-11-acetate and F-18-fluoro-6-thioheptadecanoic acid (F-18-FTHA) in femoral muscles. The method was validated with two phantom systems. First, a static phantom consisting of syringes of different diameters containing radioactivity was used to determine the recovery coefficient (RC) and spill-in factors. Second, a dynamic phantom built to model bolus injection and clearance of tracers was used to establish the correlation between blood sampling, AIF and IDIF. The RC was then applied to the femoral artery data from PET imaging studies with C-11-acetate and F-18-FTHA and to carotid artery data from brain imaging with F-18-FDG. These IDIF data were then compared to actual AIFs from patients. With C-11-acetate, the perfusion index in the femoral muscle was 0.34 +/- 0.18 min(-1) when estimated from the actual time-activity blood curve, 0.29 +/- 0.15 min(-1) when estimated from the corrected IDIF, and 0.66 +/- 0.41 min(-1) when the IDIF data were not corrected for RC. A one-way repeated measures (ANOVA) and Tukey's test showed a statistically significant difference for the IDIF not corrected for RC (p < 0.0001). With F-18-FTHA there was a strong correlation between Patlak slopes, the plasma to tissue transfer rate calculated using the true plasma radioactivity content and the corrected IDIF for the femoral muscles (vastus lateralis r=0.86, p=0.027; biceps femoris r=0.90, p=0.017). On the other hand, there was no correlation between the values derived using the AIF and those derived using the uncorrected IDIF. Finally, in the brain imaging study with F-18-FDG, the cerebral metabolic rate of glucose (CMRglc) measured using the uncorrected IDIF was consistently overestimated. The CMRglc obtained using blood sampling was 13.1 +/- 3.9 mg/100 g per minute and 14.0 +/- 5.7 mg/100 g per minute using the corrected IDIF (r (2) =0.90). Correctly obtained, carotid and femoral artery IDIFs can be used as a substitute for AIFs to perform tracer kinetic modelling in skeletal femoral muscles and brain analyses.
引用
收藏
页码:1539 / 1550
页数:12
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