Search PubMed⌕ Search

Biomedical subjects

L Goldstein

Publications and source records attributed to L Goldstein.

At least 163 records · Page 9Linked to original sources

Effects of lead on gamma-glutamyl transpeptidase and (Na+ -K+)-adenosine triphosphatase of the small intestinal mucosa.

Oral lead, when fed to young rats for 6 weeks, at a level of 0.50 in the diet, produced an increase in small intestinal mucosal gamma-glutamyl transpeptidase, an enzyme capable of catalyzing membrane translocation of amino acids and small peptides. However, a non-competitive inhibition with the glutamate acceptor used, glycylglycine, was demonstrated for lead, in vitro (l50 = 1.0 mM in purified brush border preparations). Lead ingestion caused a reduction of small intestinal mucosal (Na+ -K+)-ATPase (l50 = 0.4 - 0.6mM). At 0.2 mM concentration, lead was a competitive inhibitor for ATP in a (Na+ -K+)-ATPase assay system in vitro. A higher concentration of lead (0.5 mM) also produced an inhibitory, but non-competitive effect, with a decline of Vmax from 36.6 to 8.1 nmoles/min X cm.

Animals↗

Glutamine synthetase activity of muscle in acidosis.

Metabolic acidosis stimulates the rate of glutamine release from muscle, and this in turn is used by the kidney in acid-base balance. NH4Cl, HCl or diabetic ketoacidosis increases the maximum activity of glutamine synthetase in skeletal muscle. Starvation and administration of adrenal steroids also increase the activity of the enzyme in muscle.

Acidosis↗

Muscle glutamine production in diabetic ketoacidotic rats.

The mechanism of activation of glutamine production by the hindlimb during diabetic ketoacidosis (DKA) was investigated in rats. Muscle glutamine production was estimated to account for over 90% of the total glutamine produced by the hindlimb. DKA produced significant increases in the concentrations of NH4+ and IMP in hindlimb muscles, suggesting that AMP deaminase is activated by DKA. NH4Cl- and HCl-induced acidosis did not produce these changes, indicating either that acidosis itself is not the stimulus for increased AMP deaminase activity or that the more severe degree of acidosis accompanying DKA is necessary for activation. Muscle glutamine concentrations were depressed in DKA. Experiments with isolated epitrochlearis muscle showed that the transport and permeability properties of the muscle cells (as judged by uptake and release of alpha-aminoisobutyrate and glutamine) were not altered by DKA. However, glutamine uptake by muscle cells was significantly inhibited by L-leucine, the concentration of which, along with other branched-chain amino acids, is markedly elevated in DKA.

Adipose Tissue↗

Renal ammoniagenesis and acid excretion in the dogfish, Squalus acanthias.

Renal ammoniagenesis and acid excretion were investigated in normal dogfish (Squalus acanthias) and dogfish made acidotic by HCl injection (0.65 meq X kg-1). After acid loading, renal ammonia excretion doubled, rising from 0.11 to 0.25 mueq X h-1, and titratable acid output increased from 28.6 to 44.9 mueq X h-1. Trimethylamine excretion averaged 23.2 mueq X h-1 and did not change in response to the acidosis. During the first 24 h postinjection, the increase in renal acid excretion accounted for the elimination of 15% of the acid load. In vitro studies with kidney slices demonstrated that the dogfish kidney has the capacity to synthesize ammonia from a number of amino acids including glutamine, glutamate, alanine, aspartate, and glycine, with the greatest ammonia production resulting from glutamine. The relatively high glutamine concentration in the kidney, compared with the blood, suggested a high renal capacity for glutamine synthesis. In renal homogenates, enzymatic activities for both the deamidation (glutaminase) and synthesis (glutamine synthetase) of glutamine were investigated. The Michaelis constant (Km) values for the two enzymes were found to be almost equal (4.48 mM glutamine and 4.33 mM glutamate) and at the same levels as the substrate concentrations in the kidney (3.69 mM glutamine and 3.36 mM glutamate). Subcellular localization revealed that both enzymes occur predominantly in the mitochondria. The activities of glutaminase and glutamine synthetase in the renal mitochondria suggest the presence of a substrate cycle that could be modulated to increase ammonia production during acidosis.

Amino Acids↗

Renal ammonia excretion and production in goldfish, Carassius auratus, at low environmental pH.

Renal ammonia excretion and production were investigated in normal and acidotic goldfish (Carassius auratus). Goldfish were made acidotic by exposure to a low pH environment (pH 4.0), which caused a lowering of blood pH from 7.88 to 7.61. Environmental acidification resulted in an increase in total renal ammonia excretion (from 0.43 to 1.00 mueq X 100 g-1 X h-1) and urinary concentration (from 0.58 to 0.76 mM), as well as a rise in renal titratable acid output (from -0.57 to +0.62 mueq X 100 g-1 X h-1). The acidotic fish showed a rise in urine flow that was due to an increased glomerular filtration rate. In vitro studies demonstrated the capacity for renal ammonia formation from aspartate, alanine, glutamine, glutamate, and glycine. The relatively high level of glutamate in the renal tissue suggested that the generation of ammonia from these amino acids occurs via the formation of glutamate, either by deamidation of glutamine or transdeamination of aspartate and alanine. Both ammonia production by isolated renal tubules and individual enzyme assays in kidney homogenates indicated that aspartate has the greatest potential as a renal ammonia precursor in vitro. The purine nucleotide cycle, investigated with the use of the inhibitor coformycin, does not appear to contribute to ammonia production in the kidney of this species.

Acidosis↗

Taurine transport by isolated flounder renal tubules.

Previous in vivo clearance studies (Schrock et al., '82) have revealed that taurine is secreted by marine fish kidneys. In the present study taurine secretion by the flounder (Pseudopleuronectes americanus) renal tubule was investigated by assaying the transport of 14C-taurine in vitro. Collections from isolated fluid-secreting flounder tubules confirmed the presence of a tubular mechanism for taurine secretion. The flounder renal tubule concentrated taurine in the lumen at a lumen/bath ratio of 25, with the movement across the peritubular membrane identified as the concentrating step of taurine transport. Studies with teased flounder renal tubules identified transport as Na+ and C1- dependent. Taurine transport was inhibited by beta alanine, gamma-aminobutyric acid, and hypotaurine. In a study of the hormonal control of taurine transport, only the adrenal steroid dexamethasone stimulated taurine uptake by the flounder renal tubules. Transport was not affected by the second messengers adenosine 3'5'-cyclic monophosphate, guanosine 3'5'-cyclic monophosphate, adenosine, or Ca++ ionophore (A12384).

Animals↗

Similarities and differences in the Fc-binding glycoprotein (gE) of herpes simplex virus types 1 and 2 and tentative mapping of the viral gene for this glycoprotein.

We performed affinity chromatography and immunoprecipitation experiments to determine whether cells infected with herpes simplex virus type 2 (HSV-2) expressed a glycoprotein that was functionally and antigenically related to the HSV-1 Fc-binding glycoprotein designated gE. We found that a protein from extracts of HSV-2-infected HEp-2 cells bound specifically to an Fc affinity column and that the electrophoretic mobility of this protein in sodium dodecyl sulfate-acrylamide gels was slightly less than the mobility of HSV-1 gE. Immunoprecipitation experiments performed with an antiserum prepared against HSV-1 gE revealed that (i) extracts from HSV-2-infected cells contained a glycoprotein that was antigenically related to HSV-1 gE; (ii) the electrophoretic mobility of the HSV-2 gE was indistinguishable from the mobility of the HSV-2 Fc-binding protein; (iii) the antiserum reacted with both newly synthesized transient forms and stable fully processed forms of both HSV-1 gE and HSV-2 gE; and (iv) the transient and stable forms of HSV-2 gE all had lower electrophoretic mobilities than their HSV-1 counterparts. Electrophoretic analyses of gE precipitated from extracts of HEp-2 cells infected with two sets of HSV-1 x HSV-2 intertypic recombinant viruses suggested that the gene for gE is located at the right end of the HSV genome (0.85 to 0.97 map units) in the unique portion of the S component.

Antigens, Viral↗

Renal handling of taurine in marine fish.

Net renal tubular excretion of taurine was demonstrated by clearance techniques in the dogfish, Squalus acanthias; the little skate, Raja erinacea; and in the winter flounder, Pseudopleuronectes americanus. Dogfish acclimated to 70% seawater had increased renal excretion of taurine resulting from higher glomerular filtration rates of taurine as well as from increased rats of tubular secretion. Tubular secretion of taurine prevailed in the dogfish and flounders measured, whereas it occurred in only 30% of the population of skates where tubular reabsorption predominated. Taurine uptake into incubated dogfish thin kidney slices was investigated. Uptake occurs mainly across the peritubular membrane, is carrier mediated, dependent on metabolic energy, and completely inhibited by ouabain and low Na in the medium. The active transport of taurine is also inhibited by beta-alanine but not by alpha-aminoisobutyric acid, glycine, gamma-aminobutyric acid, PAH, or probenecid.

Animals↗

Ketone body effects on glutamine metabolism in isolated kidneys and mitochondria.

beta-Hydroxybutyrate (but not acetoacetate) caused marked inhibition of ammonia production and glutamine extraction in isolated perfused kidneys from normal rats. Glutamine synthesis was not affected by beta-hydroxybutyrate (BHB). Measurement of metabolite levels in freeze-clamped kidneys showed that BHB increased glutamine concentration, decreased ammonia concentration, and reduced the mitochondrial NAD+/NADH ratio (calculated) in perfused kidneys. BHB inhibited flux through the glutamate dehydrogenase pathway, probably as a result of reduction in the NAD+/NADH ratio, in isolated renal mitochondria. In isolated perfused kidneys from acidotic rats, ammonia production and mitochondrial NAD+/NADH were both elevated and BHB did not inhibit renal ammoniagenesis. Although ammonia production in the acidotic kidneys was not directly related to the mitochondrial NAD+/NADH ratio, the elevation of this ratio may have permitted a normal rate of oxidation of glutamine end products--which is essential for maintaining the elevated ammoniagenesis--to take place in the presence of BHB.

3-Hydroxybutyric Acid↗

Small nuclear RNAs in cellular growth and differentiation. I: metabolic alterations seen in Friend erythroleukemic cells.

Electrophoretic analysis of near steady-state labeled nuclear RNA obtained from Friend virus-transformed murine erythroleukemic cells reveals the presence of at least 15 small nuclear RNAs (snRNAs) distinct from ribosomal 5.8S or 5S. Identical qualitative distributions were obtained from logarithmically growing, stationary-phase, and dimethyl sulfoxide-induced, terminally differentiated cultures, indicating the constitutive synthesis of all snRNAs regardless of the proliferative or differentiated state of the cells. However, several quantitative differences in nuclear snRNA levels were observed. Progression from rapidly growing to stationary-phase cultures was accompanied by the marked reduction in accumulation of all snRNAs except the 4.5S snRNAs. Particularly striking were the decreases in levels of U3 and the U1 group, snRNAs that are relatively abundant. Similar reductions were noted when cells were induced to differentiate, except that decreases in the levels of U2 and 4.5S were more dramatic than those seen for cells entering stationary-phase. The data thus demonstrate that snRNA levels may be regulated both in association with changes in proliferative capacity of cells and with changes in gene expression that occur during terminal differentiation.

Animals↗

Distribution of proteins between nucleus and cytoplasm of Amoeba proteus.

By transplanting nuclei between labeled and unlabeled cells, we determined the localization of the major proteins of amebas and described certain features of their intracellular distributon. We identified approximately 130 cellular proteins by fluorography of one-dimensional polyacrylamide electrophoretic gels and found that slightly less than half of them (designated NP, for nuclear proteins) are almost exclusively nuclear. About 95 percent of the other proteins (designated CP for cytoplamsic proteins) are roughly equally concentrated in nucleus and cytoplasm, but-because the cytoplasm is 50 times larger than the nucleus-about 98 percent of each of the latter is in the cytoplasm. Of the CP, roughly 5 percent are not detectable in the nucleus. Assuming that these are restricted to the cytoplasm only because, for example, they are in structures too large to enter the nucleus and labeled CP readily exit a nucleus introduced into unlabeled cytoplasm, we conclude that the nuclear envelope does not limit the movement of any nonstructural cellular protein in either direction between the two compartments. Some NP are not found in the cytoplasm (although ostensibly synthesized there) presumably because of preferential binding within the nucleus. Almost one half of the protein mass in nuclei in vivo is CP and apparently only proteins of that group are lost from nuclei when cells are lysed. Thus, while an extracellular environment allows CP to exit isolated nuclei, the nuclear binding affinities for NP are retained. Further examination of NP distribution shows that many NP species are, in fact, detectable in the cytoplasm (although at only about 1/300 the nuclear concentration), apparently because the nuclear affinity is relatively low. These proteins are electrophoretically distinguishable from the high-affinity NP not found in the cytoplasm. New experiments show that an earlier suggestion that the nuclear transplantation operation causes an artifactual release of NP to the cytoplasm is largely incorrect. Moreover, we show that cytoplasmic "contamination" of nuclear preparations is not a factor in classifying proteins by these nuclear transplantation experiments. We speculate the no mechanism has evolved to confine most CP to the cytoplasm (where they presumably function exclusively) because the cytoplasm's large volume ensures that CP will be abundant there. Extending Bonner's idea of "quasi-functional nuclear binding sites" for NP, we suggest that a subset of NP usually have a low affinity for available intranuclear sites because their main function(s) occurs at other intranuclear sites to which they bind tightly only when particular metabolic conditions demand. The other NP (those completely absent from cytoplasm) presumable always are bound with high affinity at their primary functional sites.

Amoeba↗

Hemispheric quantitative EEG changes following emotional reactions in neurotic patients.

Twenty-four right-handed patients undergoing primal therapy served as subjects in the study. They all showed symptoms of tension, anxiety, and/or depression. The patients' right and left temporal EEGs were recorded immediately before and after a therapy session. Recordings were done while the patients were resting, and while they were performing a verbal and a visual task with their eyes closed. The EEG data were analysed off-line with a computer, using quantitative amplitude analysis in the 1.5 to 30 Hz frequency band. A "high intensity" group (n = 13) having high ratings of emotional activity in their therapy session was compared with a "low intensity" group (n = 11) with low ratings. The results showed that only in the "high intensity" group was there a significant increase in mean amplitude and amplitude variance in the right hemisphere, measured across conditions. A between-group comparison revealed that the "high intensity" group showed a significantly larger increase in right hemisphere variance and in right over left variance ratio, relative to the "low intensity" group, in which these variables were almost unchanged. These results indicate a greater involvement of the right hemisphere in emotional activity. It is also suggested that the EEG changes found in the "high intensity" group, following a therapy session, reflect a general deactivation of the brain and a functional improvement of the right hemisphere.

Adult↗

Interorgan relationships for glutamine metabolism in normal and acidotic rats.

The interorgan relationships for glutamine were investigated in normal, chronically acidotic, and diabetic ketoacidotic rats. In the normal rat, muscle tissue is the major site that releases glutamine into the circulation, and the nonhepatic splanchnic bed (mainly gut) is the major site of glutamine uptake. The liver of normal, postabsorptive rats takes up glutamine also. The kidneys have no significant affect on circulating glutamine in normal rats. In chronic NH4Cl and HCl acidosis, muscle glutamine release doubles. In addition, the liver decreases glutamine uptake and releases glutamine into the circulation. Muscle and liver supply, respectively, about 55 and 45% of the increased glutamine demand of the kidneys during chronic acidosis. No significant changes could be detected in the nonhepatic splanchnic bed during acidosis. In diabetic ketoacidotic rats, the increased demand for glutamine by the kidneys is almost entirely supplied by muscle. No significant changes occur in liver or nonhepatic splanchnic bed.

Acidosis↗