KINETIC-MODEL OF 2-DEOXYGLUCOSE METABOLISM USING BRAIN-SLICES

被引:16
作者
NEWMAN, GC
HOSPOD, FE
PATLAK, CS
机构
[1] SUNY STONY BROOK,DEPT NEUROL SURG,STONY BROOK,NY 11794
[2] VET ADM MED CTR,NEUROL SERV,NORTHPORT,NY 11768
关键词
2-Deoxyglucose; Brain slices; Glucose utilization; Ischemia; Kinetics;
D O I
10.1038/jcbfm.1990.93
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
A six-compartment, nine-parameter kinetic model of 2-deoxyglucose (2DG) metabolism, which includes bidirectional tissue transport, phosphorylation, two-step dephosphorylation, phosphoisomerization, and conjugation to UDP and macromolecules, has been derived. Data for analysis were obtained from 540- and 1,000-μm-thick hippocampal and hypothalamic brain slices, which were incubated in buffer containing [14C]2DG, frozen, extracted with perchlorate, and separated on anion-exchange columms. Solutions of the equations of the model were fit to the data by means of nonlinear least-squares analysis. These studies suggest that dephosphorylation is adequately described by a single reaction so that the model reduces to eight parameters. The in vitro rate constants for transport, phosphorylation, and dephosphorylation are very similar to prior in vivo results. The phosphoisomerization rate constant is similar to dephosphorylation, so glycosylated macromolecules slowly accumulate and gradually assume larger relative importance as other compounds disappear more rapidly. Rate constants for 540-μm slices from hypothalamus and hippocampus are similar, while 1,000-μm slices have smaller tissue transport constants and larger phosphorylation constants. The rate equation for glucose utilization of this model is relatively insensitive to uncertainties regarding the rate constants. Including later metabolic components in kinetic models improves the calcylations of glucose utilization with long isotope exposures.
引用
收藏
页码:510 / 526
页数:17
相关论文
共 31 条
[1]  
[Anonymous], 1986, NUMERICAL RECIPES
[2]  
ARION WJ, 1980, J BIOL CHEM, V255, P396
[3]   METABOLITES OF 2-DEOXYGLUCOSE IN RAT-BRAIN AT 12-24-H - BOUNDS ON KINETIC CONSTANTS [J].
BASS, L ;
BODSCH, W ;
ROBINSON, PJ ;
YOUNG, MO .
AMERICAN JOURNAL OF PHYSIOLOGY, 1987, 253 (04) :E453-E460
[4]   GLUCOSE-TRANSPORT ACROSS THE BLOOD-BRAIN-BARRIER IN NORMAL HUMAN-SUBJECTS AND PATIENTS WITH CEREBRAL-TUMORS STUDIED USING [C-11] 3-O-METHYL-D-GLUCOSE AND POSITRON EMISSION TOMOGRAPHY [J].
BROOKS, DJ ;
BEANEY, RP ;
LAMMERTSMA, AA ;
HEROLD, S ;
TURTON, DR ;
LUTHRA, SK ;
FRACKOWIAK, RSJ ;
THOMAS, DGT ;
MARSHALL, J ;
JONES, T .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1986, 6 (02) :230-239
[5]   THE INTERACTION OF TRANSPORT AND METABOLISM ON BRAIN GLUCOSE-UTILIZATION - A RE-EVALUATION OF THE LUMPED CONSTANT [J].
CRANE, PD ;
PARDRIDGE, WM ;
BRAUN, LD ;
NYERGES, AM ;
OLDENDORF, WH .
JOURNAL OF NEUROCHEMISTRY, 1981, 36 (04) :1601-1604
[6]  
DICKSON LE, 1939, NEW 1ST COURSE THEOR
[7]  
FERRARI, 1522, CITED INDIRECTLY
[8]   APPARENT ABSENCE OF A TRANSLOCASE IN THE CEREBRAL GLUCOSE-6-PHOSPHATASE SYSTEM [J].
FISHMAN, RS ;
KARNOVSKY, ML .
JOURNAL OF NEUROCHEMISTRY, 1986, 46 (02) :371-378
[10]   EFFECT OF ISCHEMIA ON QUANTIFICATION OF LOCAL CEREBRAL GLUCOSE METABOLIC-RATE IN MAN [J].
HAWKINS, RA ;
PHELPS, ME ;
HUANG, SC ;
KUHL, DE .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1981, 1 (01) :37-51