A standardized blood sampling scheme in quantitative FDG-PET studies

被引:12
作者
Bentourkia, M
Bol, A
Ivanoiu, A
Michel, C
Coppens, A
Sibomana, M
Cosnard, G
De Volder, AG
机构
[1] Univ Catholique Louvain, Positron Tomog Lab, B-1348 Louvain, Belgium
[2] Univ Catholique Louvain, Dept Radiol & Med Imaging, B-1200 Brussels, Belgium
关键词
blood sampling; FDG; input curve; PET;
D O I
10.1109/42.774165
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Quantitative estimation of brain glucose metabolism (rCMRGlc) with positron emission tomography and fluorodeoxyglucose involves arterial blood sampling to estimate the delivery of radioactivity to the brain. Usually, for an intravenous injection of 30 s duration, an accurate input curve requires a frequency of one sample every 5 s or less to determine the peak activity in arterial plasma during the first 2 min after injection. In this work, 13 standardized sampling times were shown to be sufficient to accurately define the input curve. This standardized input curve was subsequently fitted by a polynomial function for its rising part and by spectral analysis for its decreasing part. Using the measured, the standardized, and the fitted input curves, rCMRGlc was estimated in 32 cerebral regions of interest in 20 normal volunteers, Comparison of rCMRGlc values obtained with the measured and the fitted input curves showed that both procedures gave consistent results, with a maximal relative error in mean rCMRGlc of 1% when using the autoradiographic method and 2% using kinetic analysis of dynamic data, This input-curve-fitting technique, which is not dependent on the peak time occurrence, allows an accurate determination of the input-curve shape from reduced sampling schemes.
引用
收藏
页码:379 / 384
页数:6
相关论文
共 21 条
[1]   Evolution of brain glucose metabolism with age in epileptic infants, children and adolescents [J].
Bentourkia, M ;
Michel, C ;
Ferriere, G ;
Bol, A ;
Coppens, A ;
Sibomana, M ;
Bausart, R ;
Labar, D ;
De Volder, AG .
BRAIN & DEVELOPMENT, 1998, 20 (07) :524-529
[2]   THE EFFECTS OF MEASUREMENT ERRORS IN THE PLASMA RADIOACTIVITY CURVE ON PARAMETER-ESTIMATION IN POSITRON EMISSION TOMOGRAPHY [J].
CHEN, K ;
HUANG, SC ;
YU, DC .
PHYSICS IN MEDICINE AND BIOLOGY, 1991, 36 (09) :1183-1200
[3]   SPECTRAL-ANALYSIS OF DYNAMIC PET STUDIES [J].
CUNNINGHAM, VJ ;
JONES, T .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1993, 13 (01) :15-23
[4]   Brain energy metabolism in early blind subjects: Neural activity in the visual cortex [J].
DeVolder, AG ;
Bol, A ;
Blin, J ;
Robert, A ;
Arno, P ;
Grandin, C ;
Michel, C ;
Veraart, C .
BRAIN RESEARCH, 1997, 750 (1-2) :235-244
[5]   Evaluation of two population-based input functions for quantitative neurological FDG PET studies [J].
Eberl, S ;
Anayat, AR ;
Fulton, RR ;
Hooper, PK ;
Fulham, MJ .
EUROPEAN JOURNAL OF NUCLEAR MEDICINE, 1997, 24 (03) :299-304
[6]  
FENG D, 1993, INT J BIOMED COMPUT, V32, P92
[7]  
Graham MM, 1997, J NUCL MED, V38, P1161
[8]   KINETIC DATA-ANALYSIS WITH A NOISY INPUT FUNCTION [J].
HUESMAN, RH ;
MAZOYER, BM .
PHYSICS IN MEDICINE AND BIOLOGY, 1987, 32 (12) :1569-1579
[9]   OPTIMIZING ROD WINDOW WIDTH IN POSITRON EMISSION TOMOGRAPHY [J].
JONES, WF ;
DIGBY, WM ;
LUK, WK ;
CASEY, ME ;
BYARS, LG .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 1995, 14 (02) :266-270
[10]   MINIMIZATION OF PARAMETER-ESTIMATION ERRORS IN DYNAMIC PET - CHOICE OF SCANNING SCHEDULES [J].
JOVKAR, S ;
EVANS, AC ;
DIKSIC, M ;
NAKAI, H ;
YAMAMOTO, YL .
PHYSICS IN MEDICINE AND BIOLOGY, 1989, 34 (07) :895-908