Absolute cerebral blood volume and blood flow measurements based on synchrotron radiation quantitative computed tomography

被引:48
作者
Adam, JF
Elleaume, H
Le Duc, G
Corde, S
Charvet, AM
Troprès, I
Le Bas, JF
Estève, F
机构
[1] CHU Grenoble, Unite IRM, Equipe Accueil Rayonnement Synchrotron & Rech Med, MRI Dept, F-38043 Grenoble 9, France
[2] European Synchrotron Radiat Facil, Med Beamline, F-38043 Grenoble, France
关键词
synchrotron radiation; computed tomography; cerebral blood volume; cerebral blood flow; iodinated contrast agent; partial volume effects;
D O I
10.1097/01.WCB.0000050063.57184.3C
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Synchrotron radiation computed tomography opens new fields by using monochromatic x-ray beams. This technique allows one to measure in vivo absolute contrast-agent concentrations with high accuracy and precision, and absolute cerebral blood volume or flow can be derived from these measurements using tracer kinetic methods. The authors injected an intravenous bolus of an iodinated contrast agent in healthy rats, and acquired computed tomography images to follow the temporal evolution of the contrast material in the blood circulation. The first image acquired before iodine infusion was subtracted from the others to obtain computed tomography slices expressed in absolute iodine concentrations. Cerebral blood volume and cerebral blood flow maps were obtained after correction for partial volume effects. Mean cerebral blood volume and flow values (n = 7) were 2.1 +/- 0.38 mL/100 g and 129 +/- 18 mL (.) 100 g(-1) (.) min(-1) in the parietal cortex; and 1.92 +/- 0.32 mL/100 g and 125 +/-17 mL (.) 100 g(-1) (.) min(-1) in the caudate putamen, respectively. synchrotron radiation computed tomography has the potential to assess these two brainperfusion parameters.
引用
收藏
页码:499 / 512
页数:14
相关论文
共 82 条
[1]   CEREBRAL BLOOD-VOLUME MAPS OF GLIOMAS - COMPARISON WITH TUMOR GRADE AND HISTOLOGIC-FINDINGS [J].
ARONEN, HJ ;
GAZIT, IE ;
LOUIS, DN ;
BUCHBINDER, BR ;
PARDO, FS ;
WEISSKOFF, RM ;
HARSH, GR ;
COSGROVE, GR ;
HALPERN, EF ;
HOCHBERG, FH ;
ROSEN, BR .
RADIOLOGY, 1994, 191 (01) :41-51
[3]   Methodology of brain perfusion imaging [J].
Barbier, EL ;
Lamalle, L ;
Décorps, M .
JOURNAL OF MAGNETIC RESONANCE IMAGING, 2001, 13 (04) :496-520
[4]   HYPOXIA INCREASES VELOCITY OF BLOOD-FLOW THROUGH PARENCHYMAL MICROVASCULAR SYSTEMS IN RAT-BRAIN [J].
BERECZKI, D ;
WEI, L ;
OTSUKA, T ;
ACUFF, V ;
PETTIGREW, K ;
PATLAK, C ;
FENSTERMACHER, J .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1993, 13 (03) :475-486
[5]   HYPERCAPNIA SLIGHTLY RAISES BLOOD-VOLUME AND SIZABLY ELEVATES FLOW VELOCITY IN BRAIN MICROVESSELS [J].
BERECZKI, D ;
WEI, L ;
OTSUKA, T ;
HANS, FJ ;
ACUFF, V ;
PATLAK, C ;
FENSTERMACHER, J .
AMERICAN JOURNAL OF PHYSIOLOGY, 1993, 264 (05) :H1360-H1369
[6]   THE ROLE OF NOISE IN THE MEASUREMENT OF CEREBRAL BLOOD-FLOW AND PARTITION-COEFFICIENT USING XENON-ENHANCED COMPUTED-TOMOGRAPHY [J].
BEWS, J ;
DUNSCOMBE, PB ;
LEE, TY ;
MCCLARTY, B ;
KROEKER, MA .
PHYSICS IN MEDICINE AND BIOLOGY, 1990, 35 (07) :937-945
[7]   MR CONTRAST DUE TO INTRAVASCULAR MAGNETIC-SUSCEPTIBILITY PERTURBATIONS [J].
BOXERMAN, JL ;
HAMBERG, LM ;
ROSEN, BR ;
WEISSKOFF, RM .
MAGNETIC RESONANCE IN MEDICINE, 1995, 34 (04) :555-566
[8]   BEAM HARDENING IN X-RAY RECONSTRUCTIVE TOMOGRAPHY [J].
BROOKS, RA ;
DICHIRO, G .
PHYSICS IN MEDICINE AND BIOLOGY, 1976, 21 (03) :390-398
[9]   Angiogenesis in cancer and other diseases [J].
Carmeliet, P ;
Jain, RK .
NATURE, 2000, 407 (6801) :249-257
[10]  
Cenic A, 1999, AM J NEURORADIOL, V20, P63