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A Shisheva

Publications and source records attributed to A Shisheva.

36 records · Page 2Linked to original sources

Cloning, characterization, and expression of a novel GDP dissociation inhibitor isoform from skeletal muscle.

Cellular mechanisms for controlling membrane trafficking appear to involve small GTP-binding proteins such as the Rab proteins. Rab function is regulated by GDP dissociation inhibitor (GDI), which releases Rab proteins from membranes and inhibits GDP dissociation. Here we report the isolation of a full-length cDNA encoding a novel GDI isoform of 445 amino acids (GDI-2) with a deduced molecular weight of 50,649 from mouse skeletal muscle. Full-length and partial cDNA clones encoding a previously reported GDI protein (GDI-1) were also isolated from cDNA libraries prepared from rat brain and mouse skeletal muscle, respectively. The degree of deduced amino acid sequence identity between mouse GDI-2 and our mouse GDI-1 cDNA clone is 86%. Northern (RNA blot) analysis revealed that in human tissues, both GDI-1 and GDI-2 transcripts were abundant in brain, skeletal muscle, and pancreas but were weakly expressed in heart and liver. GDI-1 mRNA was expressed in kidney, whereas GDI-2 was almost absent, while in lung the relative amounts of these mRNA species were reversed. Specific antibodies against mouse GDI-1 and GDI-2 based on unique peptide sequences in the proteins were raised. Differentiation of 3T3-L1 fibroblasts into highly insulin-responsive adipocytes was accompanied by large increases in both mRNA and protein levels of GDI-1 and GDI-2. GDI-1 and GDI-2 expressed as glutathione S-transferase fusion proteins were both able to solubilize the membrane-bound forms of Rab4 and Rab5 in a GDP/GTP-dependent manner. Taken together, these data demonstrate that the protein products of at least two genes regulate the membrane dynamics of Rab proteins in mice.

Amino Acid Sequence↗

The protein tyrosine phosphatase inhibitor, pervanadate, is a powerful antidiabetic agent in streptozotocin-treated diabetic rats.

The effect of pervanadate, a potent insulinomimetic agent that inhibits insulin receptor dephosphorylation in vitro, is now assessed in vivo. A single i.p. administration of pervanadate at concentrations as low as 700 micrograms vanadium/kg body wt markedly lowered blood glucose levels in streptozotocin-induced diabetic rats from 430 +/- 28 to 212 +/- 30 mg/100 ml within 3 h. A decrease was already observed half hour after treatment, continued in accelerating fashion to the 3rd h, and persisted for at least 24 h. The initial hyperglycemia reoccurred on the second day and remained thereafter. In comparable fashion, pervanadate decreased the blood glucose levels of control healthy rats, treated identically. Within this period body wt was not significantly altered in either group. This data indicate that rapid and efficient management of glucose homeostasis is achieved via inhibiting receptor dephosphorylation. This observation may lead to a new therapeutic approach of protein tyrosine phosphatase inhibition for future treatment of diabetes in general, and in insulin resistant states in particular.

Animals↗

Role of cytosolic tyrosine kinase in mediating insulin-like actions of vanadate in rat adipocytes.

In previous studies we have identified a cytosolic protein tyrosine kinase (CytPTK) in rat adipocytes that is largely activated in vanadate-pretreated cells (Shisheva, A., and Shechter, Y. (1992) FEBS Lett. 300, 93-96). We report here that staurosporine and its analog K-252a are highly potent (ID50 = 3 and 100 nM, respectively) in inhibiting CytPTK activity of crude cell extract or partially purified enzyme preparations. Staurosporine and K-252a were less effective by more than 2 and 1 orders of magnitude, respectively, in inhibiting insulin receptor-catalyzed PolyGlu4Tyr phosphorylation in cell-free experiments. Preincubation of rat adipocytes with either staurosporine or K-252a selectively blocked the action of vanadate in activating glucose incorporation into lipids and its oxidation. Thus, staurosporine inhibited vanadate-stimulated lipogenesis and glucose oxidation (via glycolysis and the pentose phosphate pathway) in a concentration-dependent manner with ID50 of 75 and 300 nM, respectively. Insulin-stimulated bioeffects were not inhibited at this low range of staurosporine concentration. Staurosporine had no effect on vanadate-stimulated hexose uptake or on vanadate's antilipolytic action. Using staurosporine, we probed those insulinomimetic agents which facilitate their biological activity via the insulin receptor kinase (insulin, wheat germ agglutinin, concanavalin A, and pervanadate) or via CytPTK (vanadate and to a certain degree Mn2+ and Zn2+). These results suggest that (a) vanadate facilitates its insulin-like actions on glucose utilization via the cytosolic tyrosine kinase and (b) this enzyme does not participate in vanadate effects in stimulating hexose uptake and in inhibiting lipolysis. These findings explain further vanadate's post-insulin receptor actions and raise possible application in the management of glucose metabolism in insulin-independent fashion in pathological conditions.

Adipose Tissue↗

Vanadium salts and the future treatment of diabetes.

Until the discovery of insulin by Banting and Best in 1922, diabetes had a high mortality rate. Since then regular administration of the drug has brought it under control. Nevertheless it is not an ideal drug, in that it has to be injected and because of the incidence of insulin resistance. There is, therefore, a need for alternative forms of treatment and in recent years interest has centred on the possibilities of vanadium salts.

Animals↗

Mechanism of pervanadate stimulation and potentiation of insulin-activated glucose transport in rat adipocytes: dissociation from vanadate effect.

Previous studies have shown that the combination of vanadate and H2O2 generates peroxide(s) of vanadate (pervanadate) that is able to mimic insulin in stimulating lipogenesis or protein synthesis and inhibiting lipolysis in rat adipocytes. Here we report that pervanadate is a potent trigger of 3-O-methylglucose transport in rat adipocytes, with an effective concentration of 5 microM and a maximum at 20 microM. Moreover, pervanadate produced an additional activation of approximately 60% on glucose influx in cells treated with maximally activating concentrations of insulin. Vanadate was ineffective in potentiating insulin-stimulated glucose uptake. Quercetin, a bioflavonoid that inhibits insulin receptor tyrosine kinase, blunted this effect of pervanadate. Treatment of adipocytes with pervanadate inhibited protein phosphotyrosyl phosphatase activity of cell extracts in a dose-dependent manner, with an ID50 of 5 microM and complete inhibition at 80 microM. In contrast, vanadate (1-800 microM) did not appreciably inhibit cell phosphotyrosyl phosphatases. The inhibitory effect of pervanadate correlated with the increase in protein phosphotyrosine accumulation, as determined by Western blotting with antiphosphotyrosine antibodies. The most prominent phosphotyrosine-containing band detected in pervanadate-treated adipocytes was that of autophosphorylated insulin receptor, identified by immunoblotting or immunoprecipitation with antiinsulin receptor antibodies. The addition of insulin to pervanadate-treated adipocytes (20 microM) caused a further increase (approximately 70%) in receptor autophosphorylation. In a cell-free system using partially purified insulin receptor devoid of tyrosine phosphatase activity, pervanadate did not stimulate the receptor autophosphorylation or interfere with the stimulating effect of insulin. These results suggest that 1) pervanadate triggers glucose uptake by increasing autophosphorylation of insulin receptor, preventing its dephosphorylation; 2) under physiological conditions, cellular protein phosphotyrosyl phosphatase activity is high, thereby significantly opposing insulin-mediated hexose transport; and 3) pervanadate has the unique ability to markedly increase maximal cell responsiveness in stimulating glucose transport achieved at a saturating insulin concentration. These findings suggest a possible clinical application in the management of glucose uptake in pathological conditions of insulin resistance and hyperinsulinemia.

Adipose Tissue↗

Quercetin selectively inhibits insulin receptor function in vitro and the bioresponses of insulin and insulinomimetic agents in rat adipocytes.

We report here that quercetin, a naturally occurring bioflavonoid, is an effective blocker of insulin receptor tyrosine kinase-catalyzed phosphorylation of exogenous substrate. The ID50 was estimated to be 2 +/- 0.2 microM in cell-free experiments, using a partially purified insulin receptor and a random copolymer of glutamic acid and tyrosine as a substrate. Insulin-stimulated autophosphorylation of the receptor itself was not blocked by quercetin (up to 500 microM). In intact rat adipocytes, quercetin inhibited insulin-stimulating effects on glucose transport, oxidation, and its incorporation into lipids. Inhibition of lipogenesis (50%) occurred at 47 +/- 4 microM, whereas full inhibition was evident at 110 +/- 10 microM quercetin. In contrast, the effect of insulin in inhibiting lipolysis remained unaltered in quercetin-treated adipocytes. The inhibitor was devoid of general adverse cell affects. Basal activities and the ability of lipolytic agents to stimulate lipolysis were not affected. Inhibition by quercetin enabled us to evaluate which insulinomimetic agents are dependent on tyrosine phosphorylation of endogenous substrates for stimulating glucose metabolism. Quercetin blocked lipogenesis mediated by insulin, wheat germ agglutinin, and concanavalin A. The lipogenic effect of Zn2+ and Mn2+ was partially blocked, whereas that of vanadate was not affected at all.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

A cytosolic protein tyrosine kinase in rat adipocytes.

Previous studies suggested that insulin receptor tyrosine kinase (IRTK) is the sole tyrosine kinase in rat adipocytes. We now report that this cell type also contains a cytosolic soluble protein tyrosine kinase (CytPTK) which is not related to IRTK. The enzyme phosphorylated PolyGlu4Tyr with high efficiency at a rate of 20 +/- 2 pmol PTyr/20 micrograms PolyGlu4Tyr/20 min/micrograms cytosolic protein. Upon gel filtration chromatography the enzyme activity was eluted as a single peak corresponding to a molecular mass of 53 +/- 3 kDa. Unlike IRTK, CytPTK activity was supported by Co2+ rather than by Mn2+, and it was not inactivated by N-ethylmaleimide. The enzyme was extremely sensitive to inhibition by staurosporine (ID50 = 3 nM) as opposed to IRTK (ID50 = 8 microM). In addition, CytPTK (but not IRTK) was largely activated by vanadate ions. Agents which affect the serine/threonine phosphorylation state of cell proteins did not alter CytPTK activity when subjected to intact adepocytes. In a cell-free system CytPTK activity was largely reduced by pretreatment with immobilized alkaline phosphatase at physiological pH. The possibility that CytPTK participates in insulin-independent regulation of glucose metabolism is suggested.

Adipose Tissue↗

Hydrophobic carriers of vanadyl ions augment the insulinomimetic actions of vanadyl ions in rat adipocytes.

A novel family of vanadyl ion (VO2+, oxidation state +4) carriers is introduced. These carriers possess C2 symmetry, utilize two hydroxamate groups as ion binding sites, and optionally possess asymmetric carbons. Binding efficiencies and hydrophobicities are regulated by the use of a modular assembly. When applied to rat adipocytes, these carriers augment the potency of vanadyl ions to stimulate glucose metabolism. The complexes shift the dose-response curve to the left. Also, the maximal effect of vanadyl ions which is in the order of 20-30% of that of insulin is shifted toward maximal (100-115%) stimulation. Among several chelators studied, the order of synergistic potency was RL-252 greater than or equal to RL-262 greater than 1367. RL-239, RL-280, and RL-261 had smaller effects, whereas RL-282 had a negligible effect. The synergistic action of RL-252 (and other chelators as well) on VO2+ was already observed at a molar ratio of 1:0.01 of VO2+ to RL-252, respectively, and maximal augmentation occurred at a molar ratio of 1:0.1. The superiority of the hydrophobic chelators relative to the hydrophilic ones, together with the low molar ratio of chelator to VO2+ to achieve maximal effect, strongly suggests that these chelators act as vanadyl ionophores. This notion was confirmed by carrier-facilitated extraction of VO2+ from water into CHCl3 with the following order of decreasing efficacy: RL-262 greater than RL-252 greater than 1367 greater than RL-261. The chelators' potentiating effect may therefore be related to facilitated transport of VO2+ ions into the cells' interiors.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

Preparation and application of radioiodinated sulfhydryl reagents for the covalent labeling of SH-proteins present in minute quantities.

In this study we have searched for sulfhydryl reagents which can be radiolabeled and detect minute quantities of SH-proteins. Iodoacetamidotyramine reacts with sulfhydryls at a low rate, having a pseudo-first order rate constant, kappa obs = 3 +/- 0.2 M-1 s-1, at neutral pH. In contrast, N-ethylmaleimide-containing reagents, such as tyrosine-MIB and tyramine-MIB were three orders of magnitude more reactive in alkylating sulfhydryls. Pseudo-first order rate constants, kappa obs, were in the range of 5200-5700 M-1 s-1. Therefore, a simple and convenient procedure was designed for the synthesis and the radioactive labeling of tyramine-MIB. Simplification was attained by virtue of the specific-'affinity' adsorption of [125I]tyramine-MIB (and not the other intermediates) to small Sephadex G-10 column and its elution with ethanol. [125I]Tyramine-MIB was stable for weeks in dried form and for hours in acidic to neutral aqueous solutions. The reagent, when radiolabeled to high specific activity (0.5 Ci/mumol), detected sulfhydryl proteins at concentrations as low as 1-10 pM. The applicability of the reagent in studying biological systems was demonstrated by adding it to intact adipocytes and the consequent labeling of a single protein with an apparent Mr = 32,000, which is most likely an externally oriented surface plasma membrane SH-protein. [125I]Tyramine-MIB reactivity and sensitivity exceeds that of protein-tyrosyl radioiodination by the chloramine-T procedure and is expected to assist in studying minute quantities of SH-proteins.

Adipose Tissue↗

Insulinlike effects of zinc ion in vitro and in vivo. Preferential effects on desensitized adipocytes and induction of normoglycemia in streptozocin-induced rats.

The effects of Zn2+ in mimicking insulin in vivo and in vitro are further characterized. Like insulin, Zn2+ stimulated the conversion of [U-14C]-, [1-14C]-, and [6-14C]glucose to lipids in rat adipocytes. Maximum stimulation of lipogenesis was 55-80% of maximum insulin response after preincubation (30 min at 37 degrees C) of adipocytes with ZnCl2 (0.4 mM). Under these conditions, the half-maximum effect was achieved at 0.17 +/- 0.02 mM of ZnCl2. Similarly, an insulinlike effect of Zn2+ was observed on the oxidation of glucose by both pathways, glycolytic and hexose monophosphate shunt. In contrast, unlike insulin, Zn2+ did not inhibit lipolysis but rather exhibited a slight lipolytic activity. Also, the effect of Zn2+ on hexose influx did not exceed 14 +/- 3% that of insulin. The stimulatory effects of Zn2+ were not related to generation of H2O2. Catalase (100 micrograms/ml) did not inhibit Zn(2+)-stimulated glucose oxidation and its incorporation into lipids. Zn2+ had an additive effect on either insulin- or vanadate-stimulated conversion of [1-14C]glucose to fat, and together, the effect was approximately 140% of the maximum rate of lipogenesis. Chelation of intracellular Zn2+ by the cell-permeable chelator N,N,N',N'-tetrakis (2-pyridylmethyl)ethylenediamine did not significantly affect the ability of insulin to stimulate lipogenesis. Adipocytes derived from STZ rats were largely refractory to the modulating action of insulin. In contrast, the effect of Zn2+ on lipogenesis in these cells was more pronounced.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

A novel approach for evaluating tyrosine kinase activity based on the radioimmunological determination of phosphotyrosine.

A novel technique was designed to conveniently determine substrate phosphorylation by tyrosine kinase. The technique is based on quantitation of phosphotyrosine content of the phosphoproteins, generated during the enzyme reaction, by radioimmunoassay. Here, we utilized high-titer monoclonal antibodies to phosphotyrosine, and radioiodinated bovine serum albumin-phosphotyrosine conjugate. The radiolabeled antigen was displaced from the complex formed in the assay by unlabeled phosphotyrosine, phosphotyrosine derivatives or phosphotyrosine-containing protein substrates. Half-maximal displacement was achieved at 0.4 +/- 0.05 microM by free phosphotyrosine, and at 40 +/- 3 and 45 +/- 4 nM by acetyl-phosphotyrosine and acetyl-phosphotyrosyl-glycine ethyl ester, respectively. Neither phosphoserine, phosphothreonine nor ATP cross-reacted with the phosphotyrosine antibodies. None of the components of the enzyme reaction interfered in the RIA. The method allows quantitation of the incorporated phosphate into tyrosyl residues without interference of serine/threonine phosphorylation. This technique avoids the use of short-lived [gamma-32P]ATP and omits the separation of the phosphorylated substrate from excess nucleotide.

Animals↗

Effect of okadaic acid in rat adipocytes: differential stimulation of glucose and lipid metabolism and induction of refractoriness to insulin and vanadate.

The insulin-like effects of okadaic acid (OKA) in rat adipocytes were further characterized. Okadaic acid did not alter insulin receptor function. This includes undisturbed insulin binding and receptor-mediated ligand internalization in OKA-treated cells. Also, the tyrosine kinase activity of the insulin receptor was not modified in a cell-free system. The stimulating effects of OKA were significantly increased by preincubating (40 min) the cells at 37 C. At lower temperatures (i.e. 26-30 C), OKA did not mimic insulin. Maximal stimulation of lipogenesis occurred at 0.5 microM and then declined at higher concentrations. The insulin-like effects of OKA on lipogenesis did not persist after removal of the agent by washing at 37 C. Okadaic acid maximally stimulated the incorporation of [1-14C]glucose into lipids and the oxidation of [6-14C]glucose into 14CO2, but unlike insulin, it had little if any effect of oxidizing [1-14C]glucose to 14CO2 or incorporating [6-14C]glucose into lipids. Okadaic acid was equivalent to insulin in stimulating 3-O-methyl-glucose uptake. Since the insulin-like effects of OKA did not persist after preincubation and washing, the effects of insulin in OKA-treated cells could be evaluated. The adipocytes were found to be fully refractory to the modulating actions of insulin. Thus, insulin did not stimulate glucose transport, its oxidation, or its incorporation into lipids, and failed to reverse lipolysis. Unresponsiveness was fully developed after 40-min preincubation at 37 C with 3 microM OKA and was half-maximal at 0.13 microM OKA. It persisted at least over a period of 150 min. The effect of OKA was restricted to the stimulating actions of insulin and vanadate. Basal activities were not altered, nor was the ability of the desensitized cells to respond to isoproterenol. The lack of an insulin-like effect of OKA on some metabolic pathways enabled us to demonstrate that OKA (0.25 microM) also rendered adipocytes fully unresponsive to insulin in the continuous presence of the agent. Western blotting of the 40,000 x g pellets with antibodies to phosphotyrosine revealed the appearance of a protein with an apparent mol wt of 43,000 in OKA-desensitized cells. In summary, OKA mimics some of insulin bioeffects, but concomitantly renders the cells tolerant to the modulating action of the hormone itself.

Adipose Tissue↗

[A method for determining the angiotensin-converting enzyme activity in the rat hypothalamus and hypophysis].

A method for determination of the activity of angiotensin-converting enzyme (ACE) in the hypothalamus and hypophysis of the rat was provided. Membrane-bound enzyme was extracted from tissues by twice homogenization and centrifugation after solubilization of membrane structures with the detergent triton X-100. Protein concentrations of tissue extracts and time of incubation, at which there was linear generation of dipeptid his-lev in the course of the enzymic reaction as at the same time its degradation from tissue peptidases was under 10%, were between 0.16 and 0.35 mg/ml for the hypothalamus and between 0.07 and 0.18 mg/ml for the hypophysis with duration of incubation between 15 and 30 min. Under these conditions the enzymic activity was determined by a substrate-fal-his-lev, amounting to 18.22%-1.3 and 96.22-42 nmol/min/mg of protein (x-SEM) for the hypothalamus (n = 18) and hypophysis (n = 30) respectively. The coefficients of variation of the enzymic analysis were determined for a series in a day (1.37%) and for a series in time (9.59%). Hydrolyzing activity synonymously identified as ACE was differentiated from other tissue peptidildipeptide hydrolases by the following three criteria: hydrolyzing activity in respect to the specific for ACE artificial substrates; activation of enzymic action by Cl-; inhibition of the activity by converting inhibitors captopryl and MK 422 as well as by the helatic agent EDTA-Na2.

Angiotensin-Converting Enzyme Inhibitors↗

Insulin-like actions of vanadate are mediated in an insulin-receptor-independent manner via non-receptor protein tyrosine kinases and protein phosphotyrosine phosphatases.

Most or all mammalian cells contain vanadium at a concentration of 0.1-1.0 microM. The bulk of the vanadium in cells is probably in the reduced vanadyl (IV) form. Although this element is essential and should be present in the diet in minute quantities, no known physiological role for vanadium has been found thus far. In the years 1975-1980 the vanadate ion was shown to act as an efficient inhibitor of Na+,K(+)-ATPase and of other related phosphohydrolyzes as well. In 1980 it was observed that vanadate vanadyl, when added to intact rat adipocytes, mimics the biological actions of insulin in stimulating hexose uptake and glucose oxidation. This initiated a long, currently active, field of research among basic scientists and diabetologists. Several of the aspects studied are reviewed here.

Adipocytes↗