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G W Goldstein

Publications and source records attributed to G W Goldstein.

12 recordsLinked to original sources

Relation of potassium transport to oxidative metabolism in isolated brain capillaries.

1. The uptake of K by a capillary suspension isolated from rat brain was studied with the radioactive analogue (86)Rb.2. Rb uptake was dependent upon the presence of oxygen and could be markedly inhibited with ouabain.3. The ouabain sensitive Rb uptake was measured at varying external concentrations of K. Uptake of K (as (86)Rb) was half-maximal when the K concentration was 3.0 mM. This in vitro affinity of the transport carrier for K is similar to that found in previous in vivo studies of K efflux from brain to blood.4. I propose that the ouabain sensitive K pump is located on the antiluminal plasma membrane of brain capillary endothelial cells and that this pump contributes to the maintenance of a constant concentration (i.e. 3 mM) of K in brain interstitial fluid.5. Glucose and palmitate were tested as possible energy substrates for the support of active Rb uptake by isolated brain capillaries. The rate of Rb uptake increased 40% when 0.25 mM-palmitate was added to a capillary suspension containing 5 mM-glucose. This stimulation of Rb uptake could be blocked by 1 mM-4-pentenoic acid, an inhibitor of fatty acid oxidation. In contrast, the fraction of Rb uptake supported by glucose was not altered by 4-pentenoic acid.6. The rates of [U-(14)C]glucose and [U-(14)C]palmitate oxidation to CO(2) were measured in isolated brain capillaries and compared to their oxidation by brain slices and synaptosomes. Palmitate was the source of 28% of the (14)CO(2) produced by the capillaries but only 0.5% of the (14)CO(2) produced by the brain slices and synaptosomes.7. It is concluded that brain capillaries are similar to renal tubules in their polar distribution of ouabain sensitive K transport carriers, dependence on oxidative metabolism for active ion transport, and use of fatty acids as energy substrates. These features may underlie the vulnerability of brain capillaries in several metabolic diseases that cause brain oedema.

Animals

Hexose transport and phosphorylation by capillaries isolated from rat brain.

Hexose transport and phosphorylation were studied in capillary segments isolated from rat brain. Uptake of 3-O-methyl-D-glucose (3MG) could be inhibited by cytochalasin B, phloretin, and phlorizin, but not by 2,4-dinitrophenol or ouabain. 2-Deoxy-D-glucose (2DG), D-glucose, galactose, and mannose inhibited 3MG uptake, while L-glucose, fructose, and ribose did not. Accelerative exchange diffusion of 3MG was demonstrated. At equilibrium, the intracellular concentration of hexose did not exceed the external concentration, and transport was, therefore, equilibrative rather than accumulative. Transport of 2DG and D-glucose was not rate limiting for metabolism. When incubated in 5 mM D-glucose, the endothelial cells contained a large pool of free glucose. L-Glucose entered capillaries more slowly than other hexoses and served as a marker for simple diffusion of sugars into the cells. Our results suggest that sugar uptake into isolated brain capillaries occurs by a transport system similar to the one responsible for glucose transport across the blood-brain barrier in vivo.

Animals

Polarity of the blood-brain barrier: neutral amino acid transport into isolated brain capillaries.

Capillary endothelial cells isolated from rat brain exhibit Na+-dependent uptake of the neutral amino acid analog alpha-(methylamino)isobutyric acid. Since studies in vivo demonstrate that this transport system is not present on the blood side of brain capillaries we conclude that Na+-dependent neutral amino acid transport is located on the brain side. Therefore, the luminal plasma membrane and the antiluminal plasma membrane appear to be functionally distinct. This polarity should permit brain capillary endothelial cells to actively regulate the internal milieu of the brain.

Aminoisobutyric Acids

Transient hydrocephalus in premature infants: Treatment by lumbar punctures.

Three premature infants with post-haemorrhagic hydrocephalus were treated by removing large volumes of cerebrospinal fluid with repeated lumbar punctures. After this treatment, a computerised tomographic brain scan showed that ventricle size had decreased, and subsequent head growth was normal in all three patients. The results suggest that acquired hydrocephalus in premature infants may be transient and that ventricular shunts may not be necessary in all cases.

Cephalometry