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Biomedical subjects

A Gjedde

Publications and source records attributed to A Gjedde.

At least 127 records · Page 7Linked to original sources

Brain damage following low flow cardiopulmonary bypass in pigs.

Reduction of pump flow during cardiopulmonary bypass (CPB) reduces the formation of microemboli and trauma to the blood components, reduces both rewarming of the heart and the noncoronary collateral flow, and improves surgical exposure. Recent studies indicate that a reduction in pump flow, even at normothermia, does not increase the incidence of postoperative cerebral dysfunction. We examined the cerebral consequences of 2 h of normothermic CPB in pigs carried out at pump flows of either 70 ml/kg per min or 50 ml/kg per min, and compared the results with those of a nonperfused control group. We measured the regional cerebral glucose metabolism and the regional capillary diffusion capacity simultaneously in ten different brain regions. Brain morphology, the blood-brain barrier permeability to serum proteins and the regional cerebral water content were also determined in the same animals. Glucose metabolism decreased significantly in both CPB groups (P < 0.001), and significant differences were found between the capillary diffusion capacities of the three groups (P < 0.05), with decreases in eight out of ten brain regions examined in the 50 ml/kg per min group. The results indicate that a reduction of pump flows from 70 ml/kg per min to 50 ml/kg per min is deleterious to the brain, and that a pump flow of 70 ml/kg per min itself has an injurious effect, when normothermic CPB is carried out for 2 h without the use of vasoactive drugs to maintain the blood pressure. Mean arterial blood pressure (MAP) rather than pump flow seemed to determine the adequacy of the cerebral perfusion.

Animals↗

Extension of the 2-deoxyglucose method to the fetus in utero: theory and normal values for the cerebral glucose consumption in fetal guinea pigs.

Fetal cerebral metabolism changes during development. The normal fetal metabolic rate must be known to evaluate pathophysiological changes. Therefore, we determined the regional cerebral glucose consumption in the fetal guinea pig. This required the application of the 2-deoxyglucose method to this species. We measured both the transfer coefficients of deoxyglucose and glucose between the maternal arterial plasma and the fetal brain and the lumped constant in chronically prepared undisturbed guinea pig dams using a three-compartment model. Furthermore, the ratio between the initial clearances of deoxyglucose and glucose between the maternal arterial plasma and the fetal brain and the ratio between the phosphorylation coefficients of these substrates in the fetal brain were determined. The total cerebral glucose consumption measured by the deoxyglucose method (10 +/- 1.2 mumol/100 g/min) was similar to that calculated from the glucose concentration and the phosphorylation coefficient of glucose in the cerebrum (10 +/- 0.4 mumol/100 g/min). We conclude that the 2-deoxyglucose method is applicable to the guinea pig, and we further conclude that in the fetal guinea pig cerebral glucose consumption is 10 times lower than that in the adult.

Animals↗

A kinetic analysis of 6-[18F]fluoro-L-dihydroxyphenylalanine metabolism in the rat.

A previous study of the metabolism of 6-[18F]-fluoro-L-3,4-dihydroxyphenylalanine (FDOPA) in rats pretreated with carbidopa contained information amenable to kinetic analysis. Using these data, tracer transfer coefficients and metabolic rate constants were estimated. After intravenous injection, FDOPA in circulation was O-methylated (k0D = 0.055 min-1), and the metabolite (O-methyl-FDOPA) escaped from plasma with a rate constant (k-1M) of 0.01 min-1. The initial clearance of FDOPA to striatum (K1D) was 0.07 ml g-1 min-1, and the equilibrium distribution volume (VeD) was 0.67 ml g-1. The initial clearance of O-methyl-FDOPA to striatum (K1M) was 0.08 ml g-1 min-1, and the equilibrium distribution volume (VeM) was 0.75 ml g-1. The rate constant of FDOPA decarboxylation (k3D) was 0.17 min-1 in striatum. The elimination of 6-[18F]fluorodopamine (FDA) from striatum suggested an apparent rate constant for monoamine oxidase activity (k7') of 0.055 min-1. 6-[18F]Fluorohomovanillic acid (FHVA) was formed from 6-[18F]fluoro-L-3,4-dihydroxyphenylacetic acid with a rate constant (k11) of 0.083 min-1, and FHVA was eliminated from striatum (k9) with a rate constant of 0.12 min-1. The steady-state concentration ratios of FDA and its metabolites were shown to be functions of these rate constants.

Animals↗

Distributed processing of pain and vibration by the human brain.

Pain is a diverse sensory and emotional experience that likely involves activation of numerous regions of the brain. Yet, many of these areas are also implicated in the processing of nonpainful somatosensory information. In order to better characterize the processing of pain within the human brain, activation produced by noxious stimuli was compared with that produced by robust innocuous stimuli. Painful heat (47-48 degrees C), nonpainful vibratory (110 Hz), and neutral control (34 degrees C) stimuli were applied to the left forearm of right-handed male subjects. Activation of regions within the diencephalon and telencephalon was evaluated by measuring regional cerebral blood flow using positron emission tomography (15O-water-bolus method). Painful stimulation produced contralateral activation in primary and secondary somatosensory cortices (SI and SII), anterior cingulate cortex, anterior insula, the supplemental motor area of the frontal cortex, and thalamus. Vibrotactile stimulation produced activation in contralateral SI, and bilaterally in SII and posterior insular cortices. A direct comparison of pain and vibrotactile stimulation revealed that both stimuli produced activation in similar regions of SI and SII, regions long thought to be involved in basic somatosensory processing. In contrast, painful stimuli were significantly more effective in activating the anterior insula, a region heavily linked with both somatosensory and limbic systems. Such connections may provide one route through which nociceptive input may be integrated with memory in order to allow a full appreciation of the meaning and dangers of painful stimuli. These data reveal that pain-related activation, although predominantly contralateral in distribution, is more widely dispersed across both cortical and thalamic regions than that produced during innocuous vibrotactile stimulation. This distributed cerebral activation reflects the complex nature of pain, involving discriminative, affective, autonomic, and motoric components. Furthermore, the high degree of interconnectivity among activated regions may account for the difficulty of eliminating pathological pain with discrete CNS lesions.

Adult↗

Functional imaging of head and neck tumors using positron emission tomography.

Positron emission tomography (PET) is an imaging modality that generates in vivo maps of tissue radioactivity originating from a labelled substrate of glucose metabolism: 18-fluorine labelled deoxy-glucose (FDG). This study was undertaken to evaluate PET in the detection of head and neck malignancies, and to determine its effectiveness in diagnosing recurrent cancer in operated or irradiated fields. PET revealed that each biopsy-proven tumour is an area of increased radioactivity. Tumour radioactivity ranged from 130% to 300% above that of the cerebellum, and up to 650% above the contralateral, normal side. By basing the maps on tissue metabolic function, PET proved capable of distinguishing tumour (increased radioactivity) from scar tissue (reduced radioactivity). Its application may facilitate the diagnosis of recurrent tumours amid the fibrosis and distortion of normal architecture in operated, irradiated fields.

Adult↗

Arterial line filtration protects brain microcirculation during cardiopulmonary bypass in the pig.

Microemboli in the brain may inhibit brain function during cardiopulmonary bypass, and in a previous study in pigs of normothermic nonpulsatile bypass we reported a significant decrease in cerebral glucose consumption secondary to interruption of the capillary flow, possibly caused by microemboli. In the present study we measured the regional cerebral glucose consumption and the regional capillary diffusion capacity (that is, the number of perfused capillaries) in 10 different brain regions in two separate groups of animals with and without an arterial filter during normothermic cardiopulmonary bypass. Inclusion of a 40 micron arterial filter in the bypass circuit increased the regional brain glucose consumption 27% (median; range -12% to 145%) and regional capillary diffusion capacity increased 123% (median; range 36% to 829%). No change in brain histologic features, the cerebrovascular permeability to serum proteins, or cerebral water content was observed. The arterial filter probably protects the cerebral microcirculation and prevents the decrease in cerebral glucose consumption otherwise seen during bypass.

Animals↗

Administration of the new COMT inhibitor OR-611 increases striatal uptake of fluorodopa.

L-Dopa is metabolized to 3-O-methyldopa (3OMD) by catechol-O-methyltransferase (COMT). This reduces the amount of L-dopa available for entry into brain. We studied the effect of OR-611, a new COMT inhibitor, on plasma and brain 6-[18F]-fluoro-L-dopa (6FD) metabolism in cynomolgus monkeys with positron emission tomography (PET). OR-611 pretreatment substantially reduced plasma 6FD metabolism to 3-O-methylfluorodopa (3OMFD). PET measurements of striatal 6FD concentrations showed an average 2.3-fold increase following OR-611 pretreatment, compared to the same animals in the control state. OR-611 inhibits plasma metabolism of 6FD and increases brain uptake of this L-dopa analog. OR-611 appears to be a promising agent as an adjunct to L-dopa for the treatment of patients with Parkinson's disease.

Animals↗

Kinetics of the uptake of [3H]paroxetine in the rat brain.

Paroxetine, an antidepressant with a high affinity for serotonin (5-HT) re-uptake sites, is a potential tracer of these sites. We determined the kinetic properties of [3H]paroxetine in rat brain in vivo. Relative to [14C]iodo-antipyrine, the brain uptake index (BUI) of [3H]paroxetine was 60-70%. The unidirectional blood clearance of [3H]paroxetine were 0.05-0.12 ml g-1 min-1, lower than expected from the BUI values. The steady state volume of distribution was 3.5 ml hg-1 in the diencephalon and 1.8 ml g-1 in the cerebellum, suggesting a binding potential of unity. Autoradiographs at four hours after [3H]paroxetine injection (300 microCi, i.p.) revealed heterogeneous binding consistent with the calculated binding potentials. Binding was nearly absent from cerebellum and was highest in the dorsal raphe, superior colliculus, dorsal hypothalamus, and entorhinal cortex, but did not reach equilibrium in four hours of tracer circulation. The specific binding relative to vermis was displaced by pretreatment with fluoxetine (10 mg/kg, i.p.).

8-Hydroxy-2-(di-n-propylamino)tetralin↗

Absent recruitment of capillaries in brain tissue recovering from stroke.

The density of perfused capillaries (dCAP), defined as capillaries that transport glucose, as well as the volume fraction of these capillaries in the vascular bed (fCAP), and the mean transit time of blood through the capillaries (tCAP), were calculated from hemodynamic variables obtained in vivo by positron tomography of brains of six patients affected by stroke. Each patient was studied twice, within 38 hrs of the insult, and one week later. 38 ischemic and 38 contralateral mirror regions were compared. The metabolic rate for glucose (CMRglc) was determined on the basis of regional calculations of the lumped constant. No significant change of the lumped constant was observed in any region. In normal regions, no significant differences of any variables existed between the first and second studies. In the infarct regions of the first study, CMRglc and CMRO2 (cerebral metabolic rate for oxygen) were 30-50% of control (deactivation) and CBF (cerebral blood flow), capillary density, and the capillary diffusion capacity for fluorodeoxyglucose (K1) were similarly reduced, although the oxygen/glucose ratio was only 3.75 in the ischemic regions. While fCAP decreased, tCAP doubled. One week after the first study, blood flow returned to normal in the infarct regions despite continued depression of metabolism. Capillary density and diffusion capacity remained low, indicating absent recruitment of nutrition vessels (perfusion capillaries).

Adult↗

Rapid steady-state analysis of blood-brain transfer of L-Trp in rat, with special reference to the plasma protein binding.

We estimated constants for the binding of tryptophan (Trp) to plasma proteins, and for the transfer of Trp from plasma to brain in rat. The measurements were made under conditions in which the plasma and brain concentrations of Trp were raised to new steady-states for at least 10 min before being measured. The concentration of other competing amino acids were also at a steady-state. The plasma Trp concentration was elevated by i.p. injection of different doses of L-tryptophan methyl ester 60 min before the measurement of the plasma-brain transfer. We simultaneously measured blood flow with [14C]-butanol, and the brain tissue Trp uptake with [3H]Trp. The maximal velocity (Vmax), apparent half-saturation Michaelis-Menten constant (Km(app)), and diffusion constant (PdS) for Trp transport from plasma into brain were found to be 7.0 +/- 2.1 nmol g-1 min-1, 36 +/- 17 microM, and 0.065 +/- 0.006 ml g-1 min-1, respectively. The maximum plasma protein binding (Bmax) and dissociation constant (KD) for Trp were estimated at 360 +/- 16 nmol/ml-plasma and 81 +/- 10 microM, respectively. We conclude that the plasma protein binding of Trp inhibits the blood-brain transfer in inverse proportion to the plasma free Trp concentration.

Animals↗

Human striatal L-dopa decarboxylase activity estimated in vivo using 6-[18F]fluoro-dopa and positron emission tomography: error analysis and application to normal subjects.

DOPA decarboxylase is the enzyme directly responsible for the synthesis of the neurotransmitters dopamine and serotonin, and indirectly of noradrenaline, in brain. We used the decarboxylation coefficient (k3D) of 6-[18F]fluoro-DOPA (FDOPA) to denote the relative activity of L-DOPA decarboxylase in vivo in the human brain. To determine the relative enzyme activity with positron emission tomography (PET), we evaluated the model that separates the metabolism into compartments of nondiffusible and diffusible (i.e., transient) tracer metabolites. Error analysis indicated that the least-squares optimization alone was not sufficient to yield accurate estimates of k3D in the presence of the inherent error of PET. To improve the accuracy of the k3D estimates by optimizing the number of parameters, we introduced biological constraints which included a tracer partition volume (Ve) common to frontal cortex and striatum, and a fixed ratio (q) between the blood-brain barrier transport coefficients of O-methyl-[18F]fluoro-DOPA and FDOPA, the two sources of radioactivity in plasma. We found that a two-step analysis yielded sufficiently accurate estimates of k3D. The two steps include the initial estimation of the partition volume in frontal cortex and the subsequent use of this value to determine k3D in striatum and other structures. We studied twelve healthy controls (age 45 +/- 15 years). The average k3D value was 0.081 +/- 0.024 min-1 (coefficient of variation (COV) 30%) for caudate nucleus, 0.074 +/- 0.013 min-1 (COV 18%) for putamen, and 0.010 +/- 0.005 min-1 (COV 50%) for cerebral cortex.

Adult↗

6-[18F]fluoro-L-dopa metabolism in living human brain: a comparison of six analytical methods.

In 11 normal volunteers and six patients with Parkinson's disease, we compared six different analyses of dopaminergic function with L-3,4-dihydroxy-6-[18F]fluorophenylalanine (FDOPA) and positron emission tomography (PET). The caudate nucleus, putamen, and several reference regions were identified in PET images, using magnetic resonance imaging (MRI). The six analyses included two direct determinations of DOPA decarboxylase activity (k3D, k3*), the slope-intercept plot based on plasma concentration (K), two slope-intercept plots based on tissue content (k3r, k3s), and the striato-occipital ratio [R(T)]. For all analyses, the difference between two groups of subjects (normal volunteers and patients with Parkinson's disease) was larger in the putamen than in the caudate. For the caudate nucleus, the DOPA decarboxylase activity (k3D, k3*), tissue slope-intercept plots (kr3, ks3); and striato-occipital ratio [R(T)] analyses significantly discriminated between the normal volunteers and the patients with Parkinson's disease (p < 0.005) [with least significance for k3* (p < 0.05)], while the plasma slope-intercept plot (K) failed to do so. For the putamen, the values for k3D, k3*, K, k3r, k3s, and R(T) of normal volunteers were significantly higher than those of patients (p < 0.005) [with least significance for K (p < 0.025)]. Linear correlations were significant between k3D and k3s; k3D and k3r; k3D and R(T); and k3D and k3*, in this order of significance. We found no correlation between k3D and K values in the caudate nucleus.

Adult↗

Pharmacokinetics of plasma 6-[18F]fluoro-L-3,4-dihydroxyphenylalanine ([18F]Fdopa) in humans.

Like native DOPA, [18F]-6-fluoro-L-3,4-dihydroxyphenylalanine ([18F]FDOPA) is subject to methylation and decarboxylation. To determine the rates of formation and elimination of [18F]FDOPA metabolites, plasma from human subjects undergoing positron emission tomographic (PET) studies was analyzed by high-performance liquid chromatography (HPLC). In addition to the principal metabolite O-methyl-[18F]FDOPA (OMe[18F]FDOPA), two decarboxylated metabolites were detected in plasma from carbidopa pretreated subjects. The concentrations of each metabolite during 90 min following tracer injection could be described as a function of the concentration of [18F]FDOPA, and two rate constants; k0, the rate of formation, and k-1, the rate of clearance. Plasma metabolite time series generated from total plasma activity curves and measured rate constants were in close agreement with the actual concentrations determined by HPLC fractionation. Population means for k0 (0.011 +/- 0.002 min-1) and k-1 (0.010 +/- 0.003 min-1) were used to generate "simulated" plasma curves. The measured and generated plasma curves were used as inputs for estimation of partition and decarboxylation coefficients of [18F]FDOPA in brain. The use of generated input functions from normal population means of transfer coefficients did not introduce a systematic error into the estimate of the enzyme activity. However, the high variability of these estimates in patients precludes the use of this technique as an alterative to individual HPLC measurements.

Adult↗

Striatal L-dopa decarboxylase activity in Parkinson's disease in vivo: implications for the regulation of dopamine synthesis.

L-DOPA is a large neutral amino acid subject to transport out of, as well as into, brain tissue. Competition between dopamine synthesis and L-DOPA egress from striatum must favor L-DOPA egress if decarboxylation declines relatively more than transport in Parkinson's disease. To test this hypothesis, we injected patients with Parkinson's disease with a radiolabeled analogue of L-DOPA and recorded regional brain radioactivity as a function of time by means of positron emission tomography. We simultaneously estimated the activity of the decarboxylating enzyme and the amino acid transport. In the striatum of patients, we found the L-DOPA decarboxylase activity to be reduced in the head of the caudate nucleus and the putamen. However, the rate of egress of the DOPA analogue was unaffected by the disease and thus inhibited dopamine synthesis more than predicted in the absence of L-DOPA egress.

Corpus Striatum↗

Unilateral transplantation of human fetal mesencephalic tissue into the caudate nucleus of patients with Parkinson's disease.

BACKGROUND: Parkinson's disease is characterized by the loss of midbrain dopamine neurons that innervate the caudate and the putamen. Studies in animals suggest that fetal dopaminergic neurons can survive transplantation and restore neurologic function. This report compares the clinical results in four case patients with severe Parkinson's disease who underwent stereotaxic implantation of human fetal ventral mesencephalic tissue in one caudate nucleus with the results in a control group of similar subjects assigned at random to a one-year delay in surgery. METHODS: Each case patient received cryopreserved tissue from one fetal cadaver (gestational age, 7 to 11 weeks). Before implantation, adjacent midbrain tissue underwent microbiologic, biochemical, and viability testing. Cyclosporine was administered for six months postoperatively. RESULTS: The procedure was well tolerated. Three case patients showed bilateral improvement on motor tasks, as assessed on videotape, and were more functional in the activities of daily living, as assessed by themselves and neurologists, during both optimal drug therapy and "drug holiday" periods. One case patient, who died after four months from continued disease progression, had striatonigral degeneration at autopsy. In the patients who received transplants, optimal control was achieved with a lower dose of antiparkinsonian medications, whereas the controls required more medication. Positron-emission tomography with [18F]fluorodopa before and after surgery in one patient revealed a bilateral restoration of caudate dopamine synthesis to the range of normal controls, but continued bilateral deficits in the putamen. CONCLUSIONS: Although the case patients continued to be disabled by their disease, unilateral intracaudate grafts of fetal tissue containing dopamine diminished the symptoms and signs of parkinsonism during 18 months of evaluation.

Activities of Daily Living↗