Estimation of water extraction fractions in rat brain using magnetic resonance measurement of perfusion with arterial spin labeling

被引:86
作者
Silva, AC
Zhang, WG
Williams, DS
Koretsky, AP
机构
[1] CARNEGIE MELLON UNIV,DEPT BIOL SCI,PITTSBURGH,PA 15213
[2] CARNEGIE MELLON UNIV,PITTSBURGH NMR CTR BIOMED RES,PITTSBURGH,PA 15213
[3] CARNEGIE MELLON UNIV,BIOMED ENGN PROGRAM,PITTSBURGH,PA 15213
关键词
cerebral blood flow; endogenous perfusion tracers; magnetization transfer; blood-brain barrier;
D O I
10.1002/mrm.1910370110
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
The model used for calculating perfusion by MRI techniques that use endogenous water as a tracer assumes that arterial water is a freely diffusible tracer. Evidence shows that this assumption is not valid in the brain at high blood flow rates, at which movement of water into and out of the microvasculature becomes limited by diffusion across the blood-brain barrier. In this work, the arterial spin-labeling technique is used to show that fraction of arterial water that is dependent on blood flow rate remains in the vasculature and does not exchange with brain tissue water. By using perfusion measurements without and with magnetization transfer (MT) effects, one can distinguish arterial label that exchanges into tissue because blood has much smaller MT than brain tissue. Using this technique, the extraction fraction for water is measured in the rat brain at various cerebral blood flow rates. At high flow rates (similar to 5 ml/g/min), the extraction fraction for water is found to be about 45% in rat brain, Disruption of the blood-brain barrier with D-mannitol caused an increase in the extraction fraction for water. It was possible to form an image related to the extraction fraction for water. The ability to estimate the amount of vascular water exchanging with tissue water by MRI may represent a noninvasive approach to detect the integrity of the blood-brain barrier.
引用
收藏
页码:58 / 68
页数:11
相关论文
共 29 条
[11]   POSITRON EMISSION TOMOGRAPHIC MEASUREMENT OF CEREBRAL BLOOD-FLOW AND PERMEABILITY SURFACE-AREA PRODUCT OF WATER USING [O-15]WATER AND [C-11] BUTANOL [J].
HERSCOVITCH, P ;
RAICHLE, ME ;
KILBOURN, MR ;
WELCH, MJ .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1987, 7 (05) :527-542
[12]   QUANTIFICATION OF RELATIVE CEREBRAL BLOOD-FLOW CHANGE BY FLOW-SENSITIVE ALTERNATING INVERSION-RECOVERY (FAIR) TECHNIQUE - APPLICATION TO FUNCTIONAL MAPPING [J].
KIM, SG .
MAGNETIC RESONANCE IN MEDICINE, 1995, 34 (03) :293-301
[13]   MR PERFUSION STUDIES WITH T-1-WEIGHTED ECHO-PLANAR IMAGING [J].
KWONG, KK ;
CHESLER, DA ;
WEISSKOFF, RM ;
DONAHUE, KM ;
DAVIS, TL ;
OSTERGAARD, L ;
CAMPBELL, TA ;
ROSEN, BR .
MAGNETIC RESONANCE IN MEDICINE, 1995, 34 (06) :878-887
[14]   DYNAMIC MAGNETIC-RESONANCE-IMAGING OF HUMAN BRAIN ACTIVITY DURING PRIMARY SENSORY STIMULATION [J].
KWONG, KK ;
BELLIVEAU, JW ;
CHESLER, DA ;
GOLDBERG, IE ;
WEISSKOFF, RM ;
PONCELET, BP ;
KENNEDY, DN ;
HOPPEL, BE ;
COHEN, MS ;
TURNER, R ;
CHENG, HM ;
BRADY, TJ ;
ROSEN, BR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1992, 89 (12) :5675-5679
[15]   TRACER-KINETIC MODELS FOR MEASURING CEREBRAL BLOOD-FLOW USING EXTERNALLY DETECTED RADIOTRACERS [J].
LARSON, KB ;
MARKHAM, J ;
RAICHLE, ME .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1987, 7 (04) :443-463
[16]  
NEIL JJ, 1991, CONCEPTS MAGN RESON, V3, P1
[17]  
RAICHLE ME, 1983, J NUCL MED, V24, P790
[18]   QUANTITATIVE MAGNETIC-RESONANCE-IMAGING OF HUMAN BRAIN PERFUSION AT 1.5-T USING STEADY-STATE INVERSION OF ARTERIAL WATER [J].
ROBERTS, DA ;
DETRE, JA ;
BOLINGER, L ;
INSKO, EK ;
LEIGH, JS .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (01) :33-37
[19]   CONTINUOUS MEASUREMENT OF CEREBRAL BLOOD-VOLUME IN RATS WITH THE PHOTOELECTRIC TECHNIQUE - EFFECT OF MORPHINE AND NALOXONE [J].
SANDOR, P ;
PUT, JC ;
DEJONG, W ;
DEWIED, D .
LIFE SCIENCES, 1986, 39 (18) :1657-1665
[20]   Quantitative magnetic resonance imaging of perfusion using magnetic labeling of water proton spins within the detection slice [J].
Schwarzbauer, C ;
Morrissey, SP ;
Haase, A .
MAGNETIC RESONANCE IN MEDICINE, 1996, 35 (04) :540-546