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Biomedical subjects

W H Oldendorf

Publications and source records attributed to W H Oldendorf.

At least 19 recordsLinked to original sources

Some relationships between addiction and drug delivery to the brain.

Hemodynamic radioisotope studies of brain blood flow in humans have been correlated with the delivery of some common addictive drugs. Both lipophilic and hydrophilic tracers were used in the hemodynamic studies. Iodoantipyrine is lipophilic and is completely cleared by brain during a single brain circulatory passage, as are cocaine and nicotine. Iodohippurate is hydrophilic, so its brain clearance after IV injection resembles that of morphine. The earlier studies performed in humans have been related here with recent studies of blood brain penetration of drugs of abuse. As presented, these separate studies are consistent with the proposed hypothesis that the interval between drug intake and perceived effect is a significant consideration when explaining severity of addiction. The shorter the time interval between drug intake and its perceived effect, the more severe the addiction appears to be. This relationship may explain differences in severity of addiction to the same drug taken by various routes of administration.

Animals

T2 hyperintense foci on magnetic resonance images of schizophrenic patients and controls.

High resolution magnetic resonance imaging (MRI) of the brain was performed on 18 male schizophrenic patients and 15 male normal control subjects using an identical imaging protocol. The number and size of T2 hyperintense foci were clinically quantified by an academic radiologist. Large foci (greater than or equal to 3 mm in diameter) were observed more frequently on patient images (7/18) than on control images (1/15). The imaging protocol detected high rates of focal hyperintensities, but no differences between patients and controls were noted in the total affected brain area (sum of focal areas) or in the presence or absence of foci.

Adult

Rat brain free glucose and lactate measurement by a novel method using bisecting decapitation-extrusion and enzyme denaturation at five seconds.

This study investigates a novel method as a means for animal decapitation with rapid brain removal and enzyme denaturation. Briefly, the rat head is simultaneously decapitated and bisected. Either half of the in situ brain is aspirated under -250 mm Hg pressure into a modified small plastic syringe and then extruded through a needle as a fine strand into a relatively large volume of 2 M urea at 95 degrees C. After cooling, sonication, and centrifugation of the brain homogenate, the supernatant is measured enzymatically for brain free glucose and lactate concentration. Enzyme denaturation is effected within 4-6 s. The results are in good agreement with published values for glucose and lactate using other rapid enzyme inactivation techniques.

Anesthesia

Simple method for determination of heroin deacetylation in rat and human serum.

This study generally supports previous studies (4,6) of deacetylation rates of heroin by whole blood and serum. The greatly accelerated in vitro deacetylation rates noted in the rat, relative to the human, are consistent with the literature, (6), with the exception that rat serum reaction rates were about 60% faster (Table 1). This in vitro study demonstrates an example of widely differing drug metabolic rates between species. The method employs urea as a denaturing agent, which is also nondamaging to the compounds of interest. Previous studies used a variety of methods, while all of the present methods apply one relatively simple technique which is especially suited to rapid enzymatic reactions in fluid media such as whole blood.

Adult

N-acetyl-L-aspartic acid: a literature review of a compound prominent in 1H-NMR spectroscopic studies of brain.

N-acetyl aspartic acid (NAA), discovered in 1956 by Tallan, is the major peak seen in water-suppressed NMR proton (hydrogen) spectroscopy. NAA makes up about one thousandth of the wet weight of human brain and appears to be limited solely to neurons. This compound has been shown to be relatively stable for a period of twenty-four hours post-mortem and the concentration of NAA is not changed by insulin-induced hypoglycemia. MAO inhibitors lower its concentration while reserpine and other drugs increase it. NAA has been implicated in many processes of the nervous system: it may be involved in the regulation of neuronal protein synthesis, myelin production, or the metabolism of several neurotransmitters such as aspartate or N-acetyl-aspartyl-glutamate. It is involved in the neurologic disorder Canavan disease and has grown to be a vital component of in vivo 1H-NMR spectroscopic studies.

Animals

Trophic changes in the arteries at the base of the rat brain in response to bilateral common carotid ligation.

A rat model was developed to examine changes in the posterior circle of Willis and the basilar and intracranial vertebral arteries after bilateral common carotid ligation. This procedure produced a major redistribution of blood to the head, with increased flow through the vertebral and basilar arteries. Changes in the vertebral, basilar, posterior communicating and proximal segments of the posterior cerebral arteries and neck vessels were assessed by postmortem barium sulfate arteriography and by histology of the middle portion of the basilar arteries serially at four days, and one, two, four and 15 weeks post-ligation. The changes noted were basilar and vertebral artery tortuosity, enlargement, and duplication of the vertebro-basilar junction. By 15 weeks, these intracranial vascular changes had largely regressed toward normal, commensurate with the appearance of multiple collateral vessels which were scattered throughout the soft tissues of the neck and shunted the original ligation sites. A mechanism that could explain these trophic vessel changes in response to increased blood flow is discussed. Some possible correlates of these findings with several brain vascular diseases are presented.

Animals

Nuclear magnetic resonance study of obsessive-compulsive disorder.

Magnetic resonance imaging (MRI) of the brains of 32 patients who met the DSM-III criteria for obsessive-compulsive disorder and of 14 normal subjects frequently revealed abnormalities, but none was specific to obsessive-compulsive disorder. Spin-lattice relaxation time (T1) for right frontal white matter was prolonged in the patients compared to the control subjects, and the patients had greater right-minus-left T1 differences for frontal white matter. Right-minus-left T1 differences in the orbital frontal cortex were strongly correlated with symptom severity in the unmedicated patients and in the patients with family histories of obsessive-compulsive disorder.

Adult

The effect of pretreatment with pentobarbital on the extent of [14C] incorporation from [U-14C]glucose into various rat brain glycolytic intermediates: relevance to regulation at hexokinase and phosphofructokinase.

In the present investigation we monitored the incorporation of [14C] from [U-14C]glucose into various rat brain glycolytic intermediates of conscious and pentobarbital-anesthetized animals. Labeled glucose was delivered to brain by single bolus intracarotid injection and brain tissue was subsequently prepared at 15, 30, and 45 sec by freeze-blowing. Glycolytic intermediates were then separated by column chromatography. Our results showed a gradual decrease with time of 14C-labeled glucose which gave a calculated rate for glucose metabolism of 0.86 mumol/min/g and 0.56 mumol/min/g in conscious and anesthetized animals, respectively. Compared to the results obtained using conscious animals the administration of pentobarbital not only resulted in a significant attenuation of the rate of glucose metabolism but also caused a similar reduction in the amount of 14C incorporated into several glycolytic intermediates. These intermediates included: glucose 6-phosphate, fructose 6-phosphate, fructose 1,6 diphosphate, dihydroxyacetone phosphate and post glycolytic compounds. In addition, pretreatment with pentobarbital resulted in a 75% increase in the endogenous concentration of glucose, 10% increase in glucose 6-phosphate, no change in fructose 6-phosphate and 42% decrease in lactate compared to levels in brains obtained from conscious animals. These results are discussed in relation to control of glycolysis through coupled regulation at hexokinase-phosphofructokinase.

Animals

pH dependence of histidine affinity for blood-brain barrier carrier transport systems for neutral and cationic amino acids.

The effects of pH (3.5-7.5) on the brain uptake of histidine by the blood-brain barrier (BBB) carriers for neutral and cationic amino acids were tested, in competition with unlabeled histidine, arginine, or phenylalanine, with the single-pass carotid injection technique. Cationic amino acid ( [14C]arginine) uptake was increasingly inhibited by unlabeled histidine as the pH of the injection solution decreased. In contrast, the inhibitory effect of unlabeled histidine on neutral amino acid ( [14C]phenylalanine) uptake decreased with decreasing pH. Brain uptake indices with varying histidine concentrations indicated that the neutral form of histidine inhibited phenylalanine uptake whereas the cationic form competed with arginine uptake. Since phenylalanine decreased [14C]histidine uptake at all pH values whereas arginine did not, it was concluded that the cationic form of histidine had an affinity for the cationic carrier, but was not transported by it. We propose that the saturable entry of histidine into brain is, under normal physiological circumstances, mediated solely by the carrier for neutral amino acids.

Amino Acids

Diet-induced changes in rabbit serum potassium do not alter size or number of brain capillary endothelial cell mitochondria.

Previous studies have shown brain extracellular (EC) [K+] to remain constant during wide variations of the plasma-brain [K+] gradient. High serum [K+] is hypothesized to increase K+ pumping by the blood-brain barrier (BBB) to maintain normal EC levels. This changing metabolic work could be reflected in endothelial cell mitochondria which have been shown to be three to four times more numerous in the BBB than in other capillary endothelial cells. We measured several morphologic parameters of brain capillary endothelial cells in white male New Zealand rabbits following dietary manipulation of their serum [K+] levels. Four groups, based on serum [K+] levels, were formed: Deficient, Low, Normal, and High. Following the final day's weight and blood samples, rabbits were anesthetized and perfused for transmission electron microscopic planimetry. Variables included number and area of mitochondria, areas of capillary lumen and capillary diameter, area of endothelial cell, and proportion of endothelial cell taken up by mitochondria. With the exception of the area of the endothelial cell (P less than 0.01), which decreased with increasing serum [K+] levels, no differences appeared among the variables in any of the four groups. Lack of anticipated differences in mitochondrial number or proportional area indicates either that pumping K+ occupies a minor fraction of cell energy, or changes in mitochondrial size or number are not sufficiently sensitive indicators of metabolic workload in this model.

Animals

Pretreatment with 3-O-methyl-D-glucose or 2-deoxy-D-glucose attenuates the post-mortem rise in rat brain lactate.

The present investigation examined the effects of pretreatment with 3-O-methyl-D-glucose (3OMG) or 2-deoxy-D-glucose (2DOG) on post-mortem rise in rat brain lactate to evaluate their potential use for minimizing ischemia-induced rise in brain lactate. The results showed that iv administration of either glucose analogue (2 g/kg) at 2.5 min prior to sacrifice significantly attenuated (to 0.61 of control levels) post-mortem brain lactate rise. Pretreating rats with 2-deoxy-D-glucose (2 g/kg) 15 min prior to sacrifice resulted in a greater inhibition (to 0.52 of control) of the post-mortem lactate rise. The effects of these two analogues (3OMG and 2DOG) can be accounted for by their inhibition of brain glucose transport and inhibition of brain glucose metabolism by 2DOG. The present results suggest that intervention with either of these glucose analogues under the proper experimental procedures may minimize the cytopathological consequences of ischemia related to the rise in brain lactate.

3-O-Methylglucose

Regional kinetic constants for blood-brain barrier pyruvic acid transport in conscious rats by the monocarboxylic acid carrier.

The present investigation using labeled pyruvate describes the regional distribution and kinetics of the monocarboxylic acid carrier at the blood-brain barrier of conscious rats. The experimental procedure involved the arterial injection of a single bolus of 200 microliter containing [1-14C]pyruvate, [3H]water, and varying concentrations of unlabeled pyruvate into the common carotid via an indwelling externalized catheter. The hemisphere ipsi-lateral to the injection and rostral to the midbrain was removed and dissected into five regions. A kinetic analysis revealed no significant regional differences in Km values with an overall average of 1.37 mM. However, there was regional variation in the density of the monocarboxylic acid carrier as indicated by varied levels of the kinetic constant Vmax. The cortex showed the highest Vmax value of 0.42 +/- 0.08 mumol/min/g whereas values for the caudate/putamen, thalamus/hypothalamus, and remaining portion of hemisphere ranged significantly lower at 0.22-0.27 mumol/min/g. The Vmax for the hippocampus was intermediate at 0.37 +/- 0.12 mumol/min/g. The nonsaturable carrier described kinetically by KD had an overall average of 0.034 ml/min/g. The present study confirms quantitatively previous results suggesting a variable regional distribution of the monocarboxylic acid carrier.

Animals

Blood-brain barrier: interface between internal medicine and the brain.

The blood-brain barrier separates brain interstitial space from blood and is formed by brain capillary endothelial cells that are fused together by epithelial-like tight junctions. Study of the blood-brain barrier traditionally has been a relatively arcane field, even for neurobiologists. However, advances over the last 10 years in understanding the transport physiology and cell biology of the brain capillary endothelial cell now provide insights into the pathogenesis of such problems as brain glucopenia, hepatic encephalopathy, therapeutic efficacy of alpha-methyldopa, brain edema in diabetic ketoacidosis, Alzheimer's disease, brain tumors, and lupus cerebritis.

Animals

Epilepsy and the blood-brain barrier.

A concern for the possible role of the blood-brain barrier (BBB) in the epilepsies was based on ultrastructural studies that demonstrated increased micropinocytosis in cerebral capillaries during seizures. Continued interest in the structure of the BBB has led to the demonstration that, in human psychomotor epilepsy, there is a thickening of the capillary basement membrane. These studies also suggest that an increase in capillary mitochondria and interendothelial tight junctions may characterize seizure-traumatized brain regions. These studies forecast an increased interest and understanding of the ultrastructural events associated with capillaries in seizure states. Additional focus on the BBB comes from the clinical use of anticonvulsant drug levels in the control and treatment of seizures. Debate as to whether free drug levels are appropriate continues. The brain capillary is the interface between blood-borne drug and the target site, and thus an increased understanding of the events associated with brain-plasma exchange has been sought. The concept that only that fraction of drug that is freely dialyzable is available for equilibration across the BBB is not supported by recent studies, which demonstrate that protein-bound ligands are able to dissociate and gain access to the brain in the course of a single capillary transit. It has been established that albumin-bound fatty acids, steroids, and anticonvulsant drugs more readily distribute into tissues than previously believed. Thus, traditional free drug hypotheses need to be expanded to account for the fact that dissociation constants measured in vitro are not the same as those measured in vivo. The BBB also regulates nutrient availability to the brain, and under normal conditions excess substrate is made available to the brain for metabolism. Indirect evidence is available to suggest that during seizures, BBB transport may indeed be the rate-limiting step. Specifically, glucose availability to the seizing brain may be restricted to such a degree that brain glucose utilization rates are no longer independent of plasma glucose levels. If it can be proven that BBB transport is the rate-limiting step during seizures, then it would be possible to augment brain glucose utilization rates by increasing plasma glucose levels. In addition, a depression of brain glucose utilization could be achieved by inducing hypoglycemia. It is not fully understood whether BBB rate limitation would persist postically, nor is it known whether BBB alterations may be global or restricted to the seizure focus.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Two-day starvation does not alter the kinetics of blood--brain barrier transport and phosphorylation of glucose in rat brain.

The blood-brain barrier (BBB) transport and brain phosphorylation of glucose were assessed in conscious rats subjected to 2 days of starvation. Although plasma glucose decreased, no significant changes in brain blood flow, BBB glucose transport, or 2-deoxy-D-glucose phosphorylation were observed. The data suggest that adaptive changes of brain glucose metabolism previously observed in starvation are located beyond the initial steps of brain entry and phosphorylation.

Animals