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Effects of endogenous dopamine on measures of [18F]N-methylspiroperidol binding in the basal ganglia: comparison of simulations and experimental results from PET studies in baboons
Logan, J; Dewey, S L; Wolf, A P; Fowler, J S; Brodie, J D; Angrist, B; Volkow, N D; Gatley, S J
The effect of endogenous dopamine on PET measures of radioligand binding is important to the measurement of receptor density (or availability) and neurotransmitter interactions in vivo. We recently reported that pretreatment with amphetamine, a drug which stimulates dopamine release, significantly reduced NMS binding in the baboon brain as determined by the product lambda k3 derived from the graphical analysis method for irreversible systems (lambda is the ratio of the forward to reverse plasma to tissue transport constants and k3 is proportional to receptor density) (Dewey et al.: Synapse 7:324-327, 1991). The purpose of this work is twofold: to evaluate the sensitivity and stability of the analysis method used for the NMS data and from simulation studies which include the competitive effects of dopamine on NMS binding to predict the effect of dopamine on the in vivo PET experiment. Using a measured plasma [18F]-NMS input function from a control study in a baboon, simulation data was numerically generated explicitly allowing competition between NMS and dopamine in the calculation. This data was analyzed using the same techniques as used for the experimental data and the results were compared to in vitro calculations. The following conclusions were reached: 1) The effect of dopamine on specific binding was found to be greater in vivo than in vitro because the in vitro equilibrium experiment is controlled only by the relative Kd's of tracer and dopamine while the in vivo experiment also depends upon the halftime of tracer in tissue which is controlled by the tissue-to-plasma transport constant; 2) Experimental evidence from rodent studies (Seeman et al.: Synapse 3:96-97, 1989) and the agreement between PET studies (Wong et al.: Science 234:1558-1563, 1986a) and postmortem human studies (Seeman et al.: Science 225:728-731, 1984) in schizophrenics suggest that NMS is not likely to be affected by normal levels of endogenous dopamine. From the calculations reported here the effective in vivo Kd of dopamine for the NMS binding site would have to be on the order of or greater than 100 nM, assuming a synaptic dopamine concentration of 20 nM, in order that this concentration of dopamine have little effect on NMS binding
PMID: 1685599
ISSN: 0887-4476
CID: 76235
Amphetamine induced decreases in (18F)-N-methylspiroperidol binding in the baboon brain using positron emission tomography (PET)
Dewey, S L; Logan, J; Wolf, A P; Brodie, J D; Angrist, B; Fowler, J S; Volkow, N D
PMID: 2042113
ISSN: 0887-4476
CID: 76236
THE EFFECT OF ENDOGENOUS DOPAMINE ON FLUORINE-18 N METHYLSPIROPERIDOL BINDING IS PREDICTED TO BE GREATER IN-VIVO THAN IN-VITRO
LOGAN J; DEWEY S L; WOLF A P; BRODIE J D; ANGRIST B; FOWLER J S; VOLKOW N D
BIOSIS:PREV199141061530
ISSN: 0161-5505
CID: 106732
The spectral signature method for the analysis of PET brain images
Levy, A V; Laska, E; Brodie, J D; Volkow, N D; Wolf, A P
We introduce the concept of the metabolic centroid spectrum as the feature space to characterize the distribution of metabolic activity in three-dimensional brains. The method computes the metabolic centroid of a brain subvolume for each increment of metabolic activity occurring in the whole brain. The result is the metabolic spectral signature, a continuous three-dimensional curve whose shape reflects the distribution of metabolic rates in the brain. The method's sensitivity to metabolic distribution asymmetries is greatly increased over that of the metabolic centroid method, while retaining its advantages; it is almost invariant to head size, head positioning, photon scatter, and the positron emission tomography (PET) camera's full width at half-maximum. It does not require magnetic resonance, computed tomography, or x-ray images. To test the method we analyzed the metabolic PET images of 40 normal subjects and 20 schizophrenics. The results show a unification of several metabolic characteristics of schizophrenic brains, such as laterality, hypofrontality, cortical/subcortical abnormalities, and overall brain hypometabolism, which were identified by different laboratories in separate studies using differing methodologies. Here they are presented by a single automatic objective method
PMID: 1997478
ISSN: 0271-678x
CID: 140511
Positron emission tomography: basic principles and applications in psychiatric research
Volkow, N D; Brodie, J; Bendriem, B
PMID: 2035939
ISSN: 0077-8923
CID: 144619
Positron emission tomography (PET) studies of dopaminergic/cholinergic interactions in the baboon brain
Dewey, S L; Brodie, J D; Fowler, J S; MacGregor, R R; Schlyer, D J; King, P T; Alexoff, D L; Volkow, N D; Shiue, C Y; Wolf, A P
Interactions between the dopaminergic D2 receptor system and the muscarinic cholinergic system in the corpus striatum of adult female baboons (Papio anubis) were examined using positron emission tomography (PET) combined with [18F]N-methylspiroperidol [( 18F]NMSP) (to probe D2 receptor availability) and [N-11C-methyl]benztropine (to probe muscarinic cholinergic receptor availability). Pretreatment with benztropine, a long-lasting anticholinergic drug, bilaterally reduced the incorporation of radioactivity in the corpus striatum but did not alter that observed in the cerebellum or the rate of metabolism of [18F]NMSP in plasma. Pretreatment with unlabelled NMSP, a potent dopaminergic antagonist, reduced the incorporation of [N-11C-methyl]benztropine in all brain regions, with the greatest effect being in the corpus striatum greater than cortex greater than thalamus greater than cerebellum, but did not alter the rate of metabolism of the labelled benztropine in the plasma. These reductions in the incorporation of either [18F]NMSP or [N-11C-methyl]benztropine exceeded the normal variation in tracer incorporation in repeated studies in the same animal. This study demonstrates that PET can be used as a tool for investigating interactions between neurochemically different yet functionally linked neurotransmitters systems in vivo and provides insight into the consequences of multiple pharmacologic administration
PMID: 1981112
ISSN: 0887-4476
CID: 67824
THE METABOLIC CENTROID METHOD FOR PET BRAIN IMAGE-ANALYSIS - REPLY [Letter]
Levy, AV; Brodie, JD; Russell, JAG; Volkow, ND; Laska, EM; Wolf, AP
ISI:A1990DA55000022
ISSN: 0271-678x
CID: 31949
D2-RECEPTOR OCCUPANCY AND PLASMA-CONCENTRATION OF ANTIPSYCHOTICS - RESPONSE [Letter]
LOGAN, J; SCHLYER, DJ; WOLF, AP; FOWLER, JS; BRODIE, JD
ISI:A1990EP89400011
ISSN: 0006-3223
CID: 51750
Mapping muscarinic receptors in human and baboon brain using [N-11C-methyl]-benztropine
Dewey SL; MacGregor RR; Brodie JD; Bendriem B; King PT; Volkow ND; Schlyer DJ; Fowler JS; Wolf AP; Gatley SJ; et al.
The muscarinic cholinergic system has been mapped in vivo in human and baboon brain using [N-11C-methyl]-benztropine and high resolution positron emission tomography (PET). [N-11C-methyl]-benztropine uptake was observed in frontal, parietal, occipital, and temporal cortices as well as in subcortical structures including the corpus striatum and thalamus. Uptake continued to increase in baboon and human brain in all areas over an 80 minute experimental period with the exception of the cerebellum where the accumulation of radioactivity began to decrease by 25 minutes postinjection. The ratio of incorporation of [N-11C-methyl]-benztropine between corpus striatum/cerebellum was 1.53 and 1.46 in humans and baboons, respectively, at 60 minutes. Blocking studies in baboons using the muscarinic cholinergic antagonists scopolamine and benztropine and the muscarinic cholinergic agonist pilocarpine combined with blocking studies in humans using benztropine indicate that the binding of this compound is specific for the muscarinic cholinergic system. Pretreatment with the potent dopamine reuptake blocker nomifensine produced no effect on the incorporation of radioactivity in any baboon brain region examined. Analysis of labelled plasma metabolites indicates that in humans, the rate of metabolism of [N-11C-methyl]-benztropine is slow (83.0% unchanged at 30 minutes postinjection) differing quite dramatically from the rate of metabolism observed in baboons (43.4% unchanged at 30 minutes postinjection). These data combined with postmortem studies in humans and primates demonstrate that [N-11C-methyl]-benztropine is a suitable muscarinic cholinergic ligand for use in humans and baboons with PET
PMID: 2343375
ISSN: 0887-4476
CID: 62298
Dopamine blockade and clinical response: evidence for two biological subgroups of schizophrenia
Wolkin A; Barouche F; Wolf AP; Rotrosen J; Fowler JS; Shiue CY; Cooper TB; Brodie JD
Because CNS neuroleptic concentration cannot be directly measured in patients, the relation between clinical response and extent of dopamine receptor blockade is unknown. This relationship is critical in ascertaining whether nonresponse to neuroleptics is the result merely of inadequate CNS drug levels or of more basic biological differences in pathophysiology. Using [18F]N-methylspiroperidol and positron emission tomography, the authors assessed dopamine receptor occupancy in 10 schizophrenic patients before and after treatment with haloperidol. Responders and nonresponders had virtually identical indices of [18F]N-methylspiroperidol uptake after treatment, indicating that failure to respond clinically was not a function of neuroleptic uptake or binding in the CNS
PMID: 2568094
ISSN: 0002-953x
CID: 8395