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Biomedical subjects

B A Fowler

Publications and source records attributed to B A Fowler.

At least 55 records · Page 3Linked to original sources

Alteration of mitochondrial structure and heme biosynthetic parameters in liver and kidney cells by bismuth.

Ultrastructural and biochemical studies were conducted to evaluate the effects of bismuth, a potentially toxic group V trace metal, on organelle structure and heme biosynthetic parameters in rat liver and kidney cells. Bismuth subnitrate (BiONO3) was administered subcutaneously to male rats in 0, 20, 40, or 80 mg/kg doses 16 hr prior to euthanasia. Electron microscopy revealed swollen mitochondria and distortion of mitochondrial inner membranes in liver and renal proximal tubule cells at 40 and 80 mg/kg dose levels. In liver, dose-related decreases were observed in the activities of the mitochondrial enzymes, delta-aminolevulinic acid (ALA) synthetase and heme synthetase, and of the cytoplasmic enzyme, ALA dehydratase, to 51, 48, and 35% of levels seen in untreated controls, respectively. In kidney, ALA synthetase and ALA dehydratase, but not heme synthetase, were depressed in vivo to 32 and 20% of control, respectively. Studies in vitro conducted for 1-hr periods with Bi concentrations at 0, 0.1, 0.2, or 0.4 mM in reaction mixtures revealed that the direct action of the metal on membranal enzymes only partially accounts for the impairment of the activity of membranal enzymes. These studies demonstrate that the initial acute effects of bismuth in liver and kidney cells include distortion of mitochondrial membranes and direct inhibition of specific heme pathway enzymes. Both effects contribute to compromise of membrane-associated enzymatic functions. These findings are comparable to those previously reported of other trace metals with known toxicologic potential and may represent early events in bismuth-induced cell injury.

5-Aminolevulinate Synthetase↗

Metal constitution of metallothionein influences inhibition of delta-aminolaevulinic acid dehydratase (porphobilinogen synthase) by lead.

This study was undertaken to evaluate the effect of Zn and Cd pretreatment on the inhibition of delta-aminolaevulinic acid dehydratase (ALAD; porphobilinogen synthase, EC 4.2.1.24) by Pb. Male CD rats were pretreated with 200 mumol of Zn/kg s.c. (subcutaneously) or 18 mumol of Cd/kg s.c., 48 and 24 h before assay of ALAD. Pretreatment with Zn resulted in activation of hepatic and renal ALAD and attenuated the inhibition of this enzyme by Pb in vitro. Pretreatment with Cd increased hepatic ALAD activity, and the inhibitory effect of Pb on the hepatic enzyme was attenuated in this group. In contrast with the situation in liver, pretreatment with Cd did not affect the activity of renal ALAD and did not alter the inhibitory effect of Pb on the renal enzyme. The Pb IC50 (concentration causing half-maximal inhibition) values for hepatic and renal ALAD in Zn-pretreated rats and for hepatic ALAD in Cd-pretreated rats were increased above control, whereas the IC50 for renal ALAD in Cd-pretreated rats was unchanged. Cytosolic binding patterns for the three metals were assessed by gel-filtration chromatography and disclosed that 203Pb was co-eluted with Zn and Cd bound to liver and kidney Zn-thioneins and liver Cd,Zn-thionein, although minimal binding of 203Pb to kidney Cd,Zn-thionein was observed. Estimation of the molar ratio of metals bound revealed Cd/Zn ratios of 2 and 5 for Cd,Zn-thioneins from liver and kidney respectively. The inhibition of purified ALAD by Pb was also attenuated by addition of purified Zn-thioneins and Cd,Zn-thioneins from liver and kidney in the following order: liver Zn-thionein = kidney Zn-thionein greater than liver Cd,Zn-thionein much greater than kidney Cd,Zn-thionein. Thus liver and kidney Zn-thioneins and liver Cd,Zn-thionein with a low Cd/Zn ratio readily decrease the free pool of Pb available to interact with ALAD. These data also demonstrate that the capacity of metallothionein to alter the intracellular distribution of Pb and mediate the inhibition of ALAD by Pb is dependent on the tissue source and relative metal constitution of the metallothionein.

Animals↗

Kidney zinc-thionein regulation of delta-aminolevulinic acid dehydratase inhibition by lead.

This study was undertaken to evaluate the ability of kidney Zn-thionein to regulate Zn availability to the Zn-dependent enzyme, delta-aminolevulinic acid dehydratase (ALAD), and mediate the effect of Pb on this enzyme. Male CD rats were pretreated with 200 mumol Zn/kg, sc, 48 and 24 h prior to assay of renal ALAD, which resulted in activation of renal ALAD and increased the resistance of this enzyme to inhibition by Pb in vitro. To determine the mechanism for this resistance, binding patterns of Zn and Pb in kidney cytosol were assessed. Rats were pretreated with Zn 48 and 24 h prior to injection of 203Pb (170 microCi/kg, ip). Kidneys were removed 4 h later and cytosol was fractionated on a Sephadex G-75 gel filtration column. Both 203Pb and Zn coeluted with the Zn-thionein fraction. Zn-thionein-I and -II, purified previously by DEAE anion-exchange chromatography, bound 203Pb in vitro. In another experiment, addition of purified Zn-thionein to reaction mixtures increased activity of purified bovine liver ALAD twofold and reversed inhibition of ALAD by Pb. Addition of apo-thionein to reaction mixtures partially prevented the inhibition of purified ALAD by Pb, indicating the biological significance of 203Pb chelation. Gel filtration of ALAD assay incubates containing 65Zn-thionein demonstrated that Zn is transferred from Zn-thionein to ALAD. Gel filtration of incubates containing 203Pb demonstrated that the presence of Zn-thionein alters the cytosolic binding pattern of Pb, with less bound to ALAD and more bound to Zn-thionein. The results demonstrate a dual function for Zn-thionein in mediating Pb inhibition of ALAD by a mechanism involving both donation of Zn to this Zn-requiring enzyme and chelation of Pb. These results also suggest that Zn-thionein may serve to regulate ALAD activity in vivo and mediate the inhibition of this enzyme by Pb.

Animals↗

Activation of delta-aminolevulinic acid dehydratase following donation of zinc from kidney metallothionein.

Metallothionein has been postulated to function in essential metal homeostasis. In this study, we demonstrate a 1.7-fold increase in purified bovine liver delta-aminolevulinic acid dehydratase (ALAD) activity following incubation with purified kidney Zn-thionein isolated from Zn-treated rats. The mechanism of enzyme activation, as demonstrated using 65Zn-labeled thionein, involves direct transfer of Zn from Zn-thionein to ALAD. These data support the hypothesis that metallothionein serves to regulate the intracellular bioavailability of essential cations, functioning as a reservoir or conduit through which metals are donated to enzymes which require them as cofactors.

Animals↗

Mechanism of cadmium-metallothionein-induced nephrotoxicity: relationship to altered renal calcium metabolism.

Prolonged cadmium exposure has been associated with proteinuria, calcuria and loss of calcium from bones in humans. Previous studies have shown that kidney uptake of cadmium in vivo results from proximal tubule absorption of the circulating cadmium metallothionein complex (CdMT), and intracellular release of the Cd2+ ion prior to induction of renal metallothionein. Parenteral administration of CdMT has been found to selectively damage the proximal tubule cell lysosome system with development of a tubular proteinuria pattern similar to that observed under chronic exposure conditions. The present studies also demonstrate a concomitant calcuria but no changes in the excretion of other electrolytes or glucose using this model. These marked changes in renal calcium metabolism occurred in the absence of mitochondrial damage, changes in total, Na/K or Mg-stimulated ATPase activities, renal ATP levels, membrane 45Ca2+ transport or overt tubule cell necrosis during an 8 hour period following CdMT injection. Proteinuria and calcuria were prevented by prior zinc induction of the renal MT pool. Data from these studies indicate that renal proximal tubule cell uptake and degradation of the circulating CdMT complex produces both a marked proteinuria and calcuria. The calcuria does not appear to stem from changes in renal energy metabolism or membrane transport of this element but is probably a secondary result of calcium binding to excreted proteins which are increased in urine to a similar extent. The studies also suggest that zinc status and maintenance of the renal ZnMT pool may play an important role in regulating cadmium-induced renal proteinuria and calcuria by preventing Cd2+ perturbation of the proximal tubule cell lysosome system.

Adenosine Triphosphate↗

Metal alteration of uroporphyrinogen decarboxylase and coproporphyrinogen oxidase.

Both UD and CO are susceptible to alteration by sulfhydryl-directed binding agents including a variety of trace metals. UD apparently requires a functional SH group or groups for catalytic activity, and the various steps of decarboxylation catalyzed by the enzyme can be differentially inhibited by divalent cations such as Hg2+ at very low concentrations. There is evidence that tissue-specific factors such as the endogenous GSH concentration may influence the susceptibility of UD in some tissues to metal inhibition, and this circumstance could be highly relevant to the etiology of porphyrinopathies or porphyrinurias that arise during prolonged metal exposures. CO does not appear to have a requirement for functional SH groups at the active site, but several SH groups on the enzyme appear to be involved in maintaining the protein's noncovalent structural characteristics. CO appears to be substantially more readily inhibited by metals in vivo than in vitro. This observation may reflect effects of metals on both the structural integrity of the enzyme is functionally associated in the intact cell. Finally, it seems reasonable to suggest that tissues, such as the kidney, that ordinarily contribute only sparingly to total excreted porphyrin levels may assume increased importance in this regard when challenged by specific porphyrinogenic chemicals such as trace metals. Advantage might be taken of such chemical- and organ-specific changes in porphyrin metabolism and porphyrin excretion patterns in monitoring prolonged, subclinical exposure to such chemicals in human populations.

Animals↗

Regulatory roles of high-affinity metal-binding proteins in mediating lead effects on delta-aminolevulinic acid dehydratase.

The present series of studies demonstrate that several high-affinity metal-binding proteins regulate essential metal availability and play a role in metal detoxication. Rat kidney PbBP and ZnMT were shown to mediate both the interaction of Zn and Pb to a Zn metalloenzyme, that is, ALAD. The mechanism for this interaction involves the donation of Zn from PbBP and ZnMT to ALAD and chelation of Pb to these proteins. In addition to activating ALAD via donation of Zn from ZnMT to the enzyme, kidney apothionein was shown to deactivate ALAD. Thus, these proteins may provide an intracellular reservoir for essential metals such as Zn and Cu, serving as a homeostatic control mechanism to readily dispense and sequester these cations to meet cellular metabolic requirements, such as the regulation of metalloenzymes, including ALAD. Although Pb does not effectively induce the synthesis of PbBP or ZnMT, these proteins, via binding of Pb, alter the biological activity of Pb toward a highly sensitive target molecule for Pb, that is, ALAD. Finally, when ALAD is utilized as a biological indicator for Pb exposure, the effect of ZnMT on Pb availability and ALAD activity must be taken into consideration. Tissue-specific differences in these high-affinity, metal-binding proteins and Zn status may alter the expected relationships between total tissue Pb concentrations and inhibition of ALAD.

Animals↗

Alterations in renal heme biosynthesis during metal nephrotoxicity.

The regulation of the heme biosynthetic pathway in the kidney by various metals has been reviewed. In addition, a study on the effects of lead on renal heme biosynthesis after acute treatment of rats has been reported. Chronic low-level lead exposure in rats results in relatively small effects on renal heme biosynthetic pathway enzymes. After acute treatment of rats with lead, no effects on ALAD or UROS and mild, transitory effects on ALAS and ferrochelatase are observed. The intracellular binding of lead within intranuclear inclusion bodies in the proximal tubule cells and to high-affinity cytosolic lead-binding proteins probably protects sensitive subcellular systems, such as the heme pathway, from lead toxicity. Chronic exposure to methyl mercury results in increased urinary excretion of uro- and coproporphyrins in rats, mediated via inhibition of ferrochelatase and UROS and stimulation of ALAS. A tissue-specific inhibition of ALAD occurs in the kidney after treatment of rats with indium. Acute treatment of rats with nickel, platinum, tin, antimony, bismuth, and cobalt results in induction of heme oxygenase, followed by decreased microsomal heme content and ALAS stimulation in the kidney.

Animals↗

Intracellular compartmentation of metals in aquatic organisms: roles in mechanisms of cell injury.

The intracellular compartmentation of essential and toxic metals is of intense scientific interest because of its potential for adding to our understanding of both normal homeostatic mechanisms for metals and of the mechanisms which underlie metal-induced cell injury. High-affinity metal-binding proteins, lysosomes, and precipitates such as inclusion bodies or concretions, play major roles in the regulation of divalent-metal cation bioavailability. The contribution of a given compartment toward metal homeostasis is dependent upon the level exposure, cell type, organ, species, and life cycle of the organism. Toxic metals may move between these compartments, but the rates and determinants of such exchanges have not been characterized. Available data clearly indicate that sequestration of toxic metals in these specialized compartments can produce profound disturbances in the subcellular handling of essential metals. Further studies of the mechanisms by which metals partition and/or transfer among these compartments are essential to understand and predict toxicity of this important class of toxic agents.

Animals↗

In vivo 31P nuclear magnetic resonance studies of arsenite induced changes in hepatic phosphate levels.

Hepatic phosphate resonances were evaluated in vivo by 31P nuclear magnetic resonance (31P-NMR) following a single intravenous dose of sodium arsenite (10 mg/kg). Acute in vivo administration of arsenite rapidly decreased intracellular pools of all ATP phosphate with concomitant increases in inorganic phosphate and phosphomonoesters. In the phosphodiester resonance region, glycerolphosphorylcholine was also increased. The data suggest that liver cannot compensate for the rapid loss of NAD-linked substrate oxidation via other metabolic pathways, such as glycolysis for the production of ATP, and also demonstrate that 31P-NMR spectroscopy can disclose time-dependent metabolic changes of the liver in vivo.

Adenosine Triphosphate↗

Alteration of hepatocellular structure and function by thallium chloride: ultrastructural, morphometric, and biochemical studies.

The effects of thallium chloride (TlCl3.4H2O) on hepatocyte structure and function were studied in male rats at 16 hr following treatment by ip injection with doses of 0, 50, 100, and 200 mg/kg. Ultrastructural examination of hepatocytes from thallium-treated rats showed a dose-related loss of ribosomes from the endoplasmic reticulum and proliferation of the rough endoplasmic reticulum segment. Generalized mitochondrial swelling and increased numbers of electron-dense autophagic lysosomes were also observed. Morphometric analysis of hepatocytes from thallium-treated rats disclosed a 3-fold increase in the volume density of the lysosomal compartment and a 1.3-fold increase in the volume density of mitochondrial. Surface density measurements of mitochondrial and endoplasmic reticulum membranes showed dose-related increases in the surface density of both inner and outer mitochondrial membranes as well as of the rough endoplasmic reticulum. These structural changes were associated with pronounced increases in the specific activities of the mitochondrial membrane-associated enzymes monoamine oxidase and ferrochelatase to 145 and 144% of control values, respectively, and a 42% decrease in the activity of aminolevulinic acid (ALA) synthetase. Similarly, structural alteration of the endoplasmic reticulum in thallium-treated rats was associated with concomitant impairment of the microsomal enzymes NADPH cytochrome c (P-450) reductase, aniline hydroxylase, and aminopyrene demethylase to a maximum of 49, 43, and 77% of activities seen in untreated controls, respectively. In contrast, the non-membrane-bound enzymes malate dehydrogenase, ALA dehydratase, and uroporphyrinogen I synthetase were unaltered in vivo following thallium treatment at any doses. These results indicate that thallium-induced alteration of hepatic biochemical processes may arise from physical disruption of the membranal integrity of subcellular organelles with which those processes are functionally associated. These findings are consistent with those from previous studies in demonstrating a positive quantitative correlation between metal-induced subcellular organelle membrane structural injury and impairment of associated biological functions in vivo.

5-Aminolevulinate Synthetase↗

Isolation and partial characterization of a high molecular weight Cd/Zn-binding protein from the kidney of the scallop Placopecten magellanicus: preliminary studies.

Exposure of the scallop Placopecten magellanicus to 20 ppb Cd2+ in seawater for 7 weeks results in a 7-fold increase in the kidney cytosol content of Cd and 5-fold increase in Zn. Sephadex G-75 column chromatography of the kidney cytosol showed that most of the Cd and Zn were bound to a protein complex with an estimated molecular mass of 45,000 daltons. Further purification of this complex by DEAE A-25 column chromatography disclosed the presence of five peaks with varying degrees of affinity for the ion-exchange resin. One of these peaks (III) was successfully rechromatographed by ion-exchange chromatography and further purified by HPLC using a gel-permeation column. The resultant protein peak which was resistant to disaggregation by 20 mM dithiothreitol gave a preliminary amino acid composition with cysteine, glycine, alanine, and lysine as the major amino acids. The aromatic amino acid phenylalanine was also present. The ultraviolet absorption spectrum gave a 250/280 nm ratio of 2.5:1. Metal analysis of the purified protein showed that it contained Cd, Zn, and Cu in ratios of 1:1:1. Results of these studies indicate that scallop kidney produces a protein complex which appears to share both similarities with mammalian metallothionein with respect to the presence of both Cd and Zn but different with respect to apparent size, amino acid composition, and ultraviolet absorption spectrum.

Amino Acids↗

Roles of metallothionein and related proteins in metal metabolism and toxicity: problems and perspectives.

This summary examines some of the known and hypothesized roles of metallothionein and related proteins in mediating the metal metabolism and toxicity from a chemical perspective. It attempts to examine in kinetic terms how such molecules may exert homeostatic control over the intracellular bioavailability of metal ions to essential enzymatic or other molecular systems. The concept of ongoing competition between metallothionein and related proteins with other intracellular metal-binding sites for various metals is also examined in relation to the thermodynamic stability of these proteins. Comparisons between mammalian metallothionein and analogous nonmammalian proteins demonstrate both similarities and great differences in types of metal-binding sites, metal-binding constants, amino acid composition, and secondary structures such that apparent diversity of these low molecular weight metal-binding molecules in nature appears to be growing ever wider. The potential value of these data rests both in delineating new hypotheses for metallothionein evolution and in suggesting new model systems for discovering the normal function of metallothionein and related proteins in cells.

Animals↗

Purification and characterization studies of cadmium-binding proteins from the American oyster, Crassostrea virginica.

The previously reported low molecular weight cadmium-binding protein (CdBP) from the American oyster, Crassostrea virginica, has been further purified and characterized by improved technical methods. The internal organ distribution of the protein within the oyster and effects of life cycle/season on CdBP production also have been evaluated. CdBP isolated by extended ion-exchange gradients or double ion-exchange chromatography followed by HPLC analysis possesses an electrophoretic Rf of about 0.7 and contains relatively little Zn, as previously reported. Cysteine, lysine, and glycine are the dominant amino acids. When ion-exchange columns are developed with NaCl gradients, the aromatic residues tryptophan, tyrosine, and phenylalanine are found to be present, but these may be largely removed depending upon whether the protein is denatured and carboxymethylated prior to analysis. The ultraviolet absorption spectrum of CdBP also was variable, with 250/280 nm ratios ranging from 17:1 immediately after ion-exchange chromatography to 2:1 following concentration procedures. Internal organ distribution studies showed that the visceral mass contained most of the Cd present with lesser amounts in the gills and mantle. In contrast with mammals, CdBP accounts for only about 30% of the total cell Cd burden in these tissues. Cu displacement of Cd from the protein is a particular problem during the summer spawning season and appears to stem from altered Cu metabolism during this period. Relative oyster dormancy during the winter also reduces CdBP production in response to Cd, and the protein is obtained most readily during the fall and spring.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acids↗

A low molecular weight lead-binding protein in brain attenuates lead inhibition of delta-aminolevulinic acid dehydratase: comparison with a renal lead-binding protein.

A low molecular weight high-affinity lead-binding protein (PbBP) in kidney appears to account, at least in part, for the relative insensitivity of renal delta-aminolevulinic acid dehydratase (ALAD) to Pb inhibition. A PbBP is also known to exist in brain cytosol but is not a major Pb-binding constituent in liver. This study was undertaken to examine the relative sensitivity of brain and liver ALAD to Pb inhibition in vitro and to determine if inhibition of hepatic ALAD by Pb could be reversed by addition of partially purified brain PbBP to liver cytosol. This effect was also compared with that of a previously described renal PbBP. Finally, the mechanism(s) of reversal of Pb inhibition of ALAD by these tissue-specific PbBPs were studied. A concentration-dependent reversal of Pb-induced inhibition of hepatic ALAD activity was observed for both brain and kidney PbBPs. Inhibition of hepatic ALAD activity by 0.1 to 1.6 microM Pb was partially reversed by a single concentration of brain PbBP. No differences in sensitivity of ALAD to Pb inhibition in various brain regions were observed. Kinetic analysis of both brain and liver ALAD activity at an IC50 Pb showed a "mixed" or noncompetitive inhibition pattern. Addition of brain PbBP reduced markedly the inhibitory effects of Pb on the Vmax of the liver enzyme. Incubation of 65Zn-labeled PbBP fractions from brain and kidney with purified bovine liver ALAD demonstrated that the PbBPs donate Zn to ALAD.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗