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A Levitzki

Publications and source records attributed to A Levitzki.

At least 145 records · Page 8Linked to original sources

Gi affects the agonist-binding properties of beta-adrenoceptors in the presence of Gs.

Pertussis-toxin-catalyzed ADP-ribosylation of Gi in S49 membranes, but not in S49AC- membranes, which lack Gs, induces a threefold reduction of isoproterenol affinity to the beta-adrenoceptors. A similar treatment of turkey erythrocyte membranes, which are devoid of functional Gi, has no effect on beta-agonist affinity to their beta-adrenoceptors. Non-hydrolyzable analogs such as GTP[S] induce a larger decrease in beta-adrenoceptor affinity in S49 cells towards the agonist isoproterenol as compared to pertussis-toxin-catalyzed ADP-ribosylation of Gi. These results suggest that Gi affects beta-adrenoceptor affinity to its agonist and that this interaction requires the presence of Gs. It seems, therefore, that Gi physically interacts with Gs to exert its effects on the receptor and probably on adenylate cyclase as well. Our ability to detect (a) the effect of pertussis-toxin-catalyzed ADP-ribosylation in S49 cells on beta-agonist affinity and (b) the quantitative difference between the effect of pertussis toxin (approx. threefold) and GTP[S] (fivefold to sevenfold) depends on the use of a simple but rigorous method to study in detail the affinity of beta-agonists to their receptors. This method seems to be superior to the analysis of displacement curves as a means to examine receptor-ligand interactions.

Adenylate Cyclase Toxin↗

Characterization of the beta 2-adrenoceptor-dependent adenylate cyclase of A431 epidermoid carcinoma cells.

In this study we characterize the beta 2 adrenergic dependent adenylate cyclase system of epidermoid carcinoma cells (A431). We show that the cells synthesize up to 130,000 [125I]-cyanopindolol binding sites per cell when freshly plated, a value which decreased to 40,000-50,000 receptors/cell within 24 hr. Production of this high number of receptors can be strongly inhibited by actinomycin D. We confirm and extend the fact that these beta-adrenoceptors are of the beta 2-subtype, using selective ligands, photoaffinity labeling with [125I]CYP-diazirine identified two protein subunits: p59 and p72, the beta 2-adrenoceptor dependent adenylate cyclase desensitizes with half-life of 2.2 +/- 0.3 min whereas the loss of [125I]CYP binding from the cell surface requires longer exposure times to the agonist, phorbol-12-myristate-13-acetate (PMA) has no effect on the desensitization process nor does it have any effect on the modulation of beta-agonist affinity by guanyl nucleotides. Rather, PMA was found to stimulate adenylate cyclase activation by forskolin. We conclude that protein kinase C is probably not involved in the beta-adrenoceptor desensitization in this cell line.

Adenylyl Cyclases↗

Regulation of adenylate cyclase by hormones and G-proteins.

Over the past few years, it has become apparent that a large number of transmembrane signaling systems operate through heterotrimeric G-proteins [( 1] Gilman, A.G. (1984) Cell 36, 577-579; [2] Baker, P.F. (1986) Nature 320, 395). Adenylate cyclase is regulated by stimulatory hormones through Gs(alpha s beta gamma) and inhibitory hormones through Gi(alpha i beta gamma) [( 2]; Katada, T. et al. (1984) J. Biol. Chem. 259, 3586-3595), whereas the breakdown of phosphatidylinositol bisphosphate (PIP2) to inositol trisphosphate (IP3) and diacylglycerol (DG) by phospholipase C is probably also mediated by a heterotrimeric G-protein (Go or Gi) [1,2]. Similarly, the activation of cGMP phosphodiesterase by light-activated rhodopsin is mediated through the heterotrimeric G-protein transducin (Stryer, L. (1986) Rev. Neurosci. 9, 89-119). Other transmembrane signaling systems may also be found to involve G-proteins similar to those already recognized. Because of the emerging universality of G-proteins as transducers of receptor-triggered signals, it may be useful to evaluate the current models prevailing in the adenylate cyclase field, as these models seem to guide our way in evaluating the role of G-proteins in transmembrane signaling, in general.

Adenylyl Cyclases↗

An accurate method for determination of receptor-ligand and enzyme-inhibitor dissociation constants from displacement curves.

Receptor-ligand dissociation constants are usually calculated from the displacement curve of a radioactively labeled ligand bound to the receptor. The formula used is restricted to cases in which the concentration of receptor is negligible compared to the concentration of both the displacing ligand and the radioactive ligand used. In this study, we rigorously derive a simple equation that can be used for calculating receptor-ligand dissociation constants for any set of experimental conditions. A linearized form of this equation provides a convenient plot from which the dissociation constant of the displacing ligand can be directly obtained. The plot is also a test for the competitive mode of binding. This exact equation now allows us to estimate the error incurred by the conventionally used equations. Similarly, we show that for competitive inhibition in enzymology, one can derive the analogous formula. Our new formula is free of the usual restrictions--namely, that the enzyme concentration is very small compared to the concentration of both the substrate and the inhibitor. It may therefore be applied to any set of experimental conditions.

Enzyme Inhibitors↗

The activation of adenylate cyclase by guanyl nucleotides in Saccharomyces cerevisiae is controlled by the CDC25 start gene product.

In the thermosensitive cdc25 start mutant of Saccharomyces cerevisiae, the regulation of adenylate cyclase by guanyl nucleotides was rapidly nullified when the enzyme was prepared from nonsynchronized cells shifted to the restrictive temperature. In agreement with previous in vivo complementation studies, this biochemical defect was fully suppressed by the expression of either the whole cloned CDC25 gene or its C-terminal portion. Moreover, membranes prepared from cdc25(Ts) cells grown at the permissive temperature evinced an altered regulation of adenylate cyclase by guanyl nucleotides. These results indicate that the CDC25 protein, together with RAS, is involved in the regulation of adenylate cyclase by guanyl nucleotides and raise the possibility that adenylate cyclase might form a ternary complex with RAS and CDC25.

Adenylyl Cyclases↗

Stereospecific antibodies to propranolol.

The beta-adrenergic antagonist propranolol was activated through its side chain, coupled to bovine serum albumin, and injected into BALB/c mice. After fusion of the splenocytes from these immunized mice with the NS-1 myeloma cell line, two hybridomas, producing monoclonal anti-propranolol antibodies, were isolated. Clone P-49 was monospecific for propranolol, with a significant preference for the 1-stereoisomer, as compared to the d form. On the other hand, clone P-28 cross-reacted with alprenolol as well as some other beta-antagonists. Both classes of antibodies competed with A431 epidermoid carcinoma beta 2-adrenoceptors for the binding of [3H]propranolol. When ascites cells from clone P-28 were fixed with glutaraldehyde, the anti-propranolol monoclonal antibody became cell bound. These cell-bound P-28 antibodies bind propranolol and other beta-adrenergic ligands with a similar ranking order to the soluble monoclonal antibody. The cell-bound antibody displayed a 5-fold higher affinity towards 1-propranolol than the soluble monoclonal antibody. The practical implications of these findings are discussed.

Antibodies, Monoclonal↗

Adenylate cyclase activity of NIH 3T3 cells morphologically transformed by ras genes.

The observed homology between G-proteins which regulate adenylate cyclase and ras proteins and the suggested role of ras in the regulation of adenylate cyclase in yeast prompted us to examine the regulation of adenylate cyclase in three cell lines: (i) NIH 3T3 cells, (ii) NIH 3T3 cells transformed by high levels of the normal rasH gene product and (iii) NIH 3T3 cells transformed by a mutated rasH gene product. We found that the regulation of adenylate cyclase by G-proteins is identical in the three cell lines, although the response of the transformed NIH 3T3 cells to agonists is strongly attenuated. Our data suggest that mammalian ras products do not interact directly with adenylate cyclase, although their increased expression may indirectly inhibit the interaction of adenylate cyclase stimulatory receptors with G-proteins.

Adenylyl Cyclases↗

Association of turkey erythrocyte beta-adrenoceptors with a specific lipid component.

We have recently reported that the highly potent beta-adrenergic affinity label [125I]bromoacetylamino cyanopindolol ([125I]BAM-CYP) irreversibly blocks the turkey erythrocyte beta-adrenoceptor binding site by combining with a receptor-associated non-protein component. In this communication, we report: lipid labelling is inhibited by beta 1-adrenergic ligands with the potency ratio and stereospecificity characteristic for the turkey erythrocyte beta 1-adrenoceptor; the tagged component is a glycolipid, probably a ganglioside; [125I]BAM-CYP-blocked receptor, after solubilization in deoxycholate, can be separated from the [125I]BAM-CYP-glycolipid with restoration of the binding capacity of the beta 1-adrenoceptor protein; the tightly associated [125I]BAM-CYP-labelled glycolipid can be displaced by a glycolipid mixture extracted from turkey erythrocyte membranes but not by bovine brain gangliosides, when the blocked receptor is solubilized in digitonin. This is the first direct demonstration that a receptor protein is associated with a specific membrane lipid. The possibility that glycolipids play a role in receptor-mediated signal transduction is discussed in view of these findings and in view of data from the literature.

Affinity Labels↗

Reconstitution of beta 1-adrenoceptor-dependent adenylate cyclase from purified components.

In continuation of our efforts to reconstitute from purified components into lipid vesicles the signal transmission chain from beta 1-adrenoceptors to adenylate cyclase, we now report on the total reconstitution of the hormone-dependent adenylate cyclase. In these reconstitution experiments we have employed the purified adenylate cyclase (C) from bovine brain and rabbit heart, the stimulatory GTP-binding protein (GS) purified from turkey erythrocytes and rabbit liver and the beta 1-adrenoceptor (R) from turkey erythrocytes. Several detergents were compared with respect to their suitability to allow reconstitution of subunits into phospholipid vesicles. While octyl-polyoxyethylene (octyl-POE) was almost as potent as lauroyl-sucrose for preparation of vesicles containing GS.C, the latter detergent was clearly superior for vesicles enabling productive R.GS and R.GS.C coupling. The catalytic subunit from either bovine brain or rabbit heart was equally efficient in reconstitution. However, GS from turkey erythrocytes and rabbit liver revealed significant differences in RGS and RGS.C containing vesicles. While isoproterenol-induced activation of GS by GTP gamma S was first order in both instances, kon with turkey GS was 0.12 min-1, whereas kon with rabbit liver GS was 0.6 min-1. Moreover, GTP gamma S activation of erythrocyte GS was significantly more dependent on the presence of hormone than that of liver GS, confirming observations made on the native membrane-bound system. Compared with stimulation by isoproterenol (GTP gamma S) (4-fold), stimulation by isoproterenol/GTP was modest (1.3- to 1.6-fold).(ABSTRACT TRUNCATED AT 250 WORDS)

Adenylyl Cyclases↗

The hormonal regulation of adenylate cyclase.

The regulation of adenylate cyclase by hormones and by GTP regulatory proteins was investigated in native membrane systems and in systems reconstituted from purified components. These studies can be summarized as follows. The stimulatory beta 1-adrenoceptor catalyses the activation of a complex between the GTP stimulatory protein GS and the catalytic unit C. The agonist-receptor complex can activate a few cyclase units in native membrane systems as well as in reconstituted systems. GS from turkey erythrocytes is functionally different from rabbit liver GS, the latter being more amenable to activation by guanyl nucleotides in the absence of hormone. The coupling between the beta 1-adrenoceptor GS and C is efficient when compared with the coupling obtained in native membrane systems. GTP/GDP exchange at the alpha S subunit requires the presence of the beta gamma subunits. A mechanism for the inhibition of adenylate cyclase by the inhibitory GTP regulatory protein Gi is suggested.

Adenylyl Cyclases↗

Reconstitution of membrane receptor systems.

This review makes an attempt to summarize the present status of the field of receptor reconstitution. First a general discussion on the problem of receptor to effector coupling is discussed with an emphasis on the approaches used to solubilize, purify and reconstitute receptors with their respective biochemical effectors. Two categories of receptors have thus far been studied in great detail: (1) receptors linked to ion channels best represented by the nicotinic acetylcholine receptor and (2) receptors linked to adenylate cyclase. Through a detailed discussion of these two receptor systems the reader should get an idea of where the field of receptor reconstitution is headed. Only in the beta-adrenergic-receptor-dependent adenylate cyclase have the receptor and the effector systems been completely separated, purified and reconstituted. Therefore, a detailed discussion on that system occupies a very significant portion of this article. A summary of the state-of-the-art on a number of other receptor systems is also given in the last part of the review.

Absorption↗

N-Bromoacetyl-amino-cyanopindolol: a highly potent beta-adrenergic affinity label blocks irreversibly a non-protein component tightly associated with the receptor.

A new chemical affinity label for the beta-adrenergic receptor, based on the structure of pindolol, has been synthesized and iodinated with 125I. The compound, N-bromoacetylamino-cyanopindolol (BAM-CYP), has an apparent dissociation constant of 44 +/- 7 pM towards the turkey erythrocyte membranes. This compound blocks irreversibly both the ability of beta-adrenergic receptors to bind 125I-cyanopindolol and the ability of beta-receptors to activate adenylate cyclase in the presence of beta-agonists. Furthermore, the irreversible binding of BAM-CYP to half of the beta-receptor sites abolishes the ligand binding activity of all the sites. These findings suggest that the beta-receptor is oligomeric in its native state. Although 125I-BAM-CYP blocks irreversibly and specifically the beta-adrenergic receptor, it does so by labeling a non-protein component, most probably a water-soluble lipid. The labeling is stereospecific since it is prevented by l-propranolol and not by d-propranolol. It is suggested that this lipid is tightly associated with the receptor in close proximity to the binding site. It is also suggested that this water-soluble lipid fraction may prove crucial for the optimal interaction between the beta-adrenergic receptor and the components of adenylate cyclase.

Adenylyl Cyclase Inhibitors↗

Reconstitution of beta-adrenergic receptor with components of adenylate cyclase.

Beta 1-Adrenergic receptor proteins were extracted from turkey erythrocyte membranes with lauroyl sucrose and digitonin and purified by affinity chromatography on a column of alprenolol agarose Affi-gel 10 or 15. The 5000-fold purified receptor is able to couple functionally with the stimulatory GTP-binding protein (GS) from either turkey or duck erythrocytes. Functional coupling was achieved by three different approaches. (i) Purified beta-receptor polypeptides were coupled in phospholipid (asolectin) vesicles with GS from a crude cholate or lauroyl sucrose extract of turkey erythrocyte membranes. The detergent was removed and vesicles were formed with SM-2 beads. (ii) Purified beta-receptor was reconstituted with pure, homogeneous GS in asolectin vesicles. (iii) Purified beta-receptors were either coupled in asolectin vesicles with a mixture of pure, homogeneous Gpp(NH)p-activated GS and a lauroyl sucrose extract of turkey erythrocyte membranes, or with pure, homogeneous Gpp(NH)p-activated GS alone. The decay of activity was measured on addition of GTP and hormone. In (ii) and (iii), the detergent was removed and vesicles were formed by gel filtration on Sephadex G-50 columns. In each of the three different experimental conditions, the beta-receptor was activated with l-isoproterenol and activation was blocked with d,l-propranolol. Activated GS were measured separately by means of their capacity to activate a crude Lubrol PX-solubilized adenylate cyclase preparation from rabbit myocardial membrane. The kinetics of GS activation by purified beta-receptors occupied by l-isoproterenol was first order and activation was linearly dependent on receptor concentration.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenylyl Cyclases↗

The ontogenesis of beta-adrenergic receptors and of adenylate cyclase in the developing rat brain.

The development of beta-adrenergic receptors in the developing rat brain was followed for the whole brain, the cortex and the cerebellum. The probe used was 125I-cyanopindolol. Through the use of this probe, the kinetics of appearance of beta-receptors was found to be different from that reported using 125I-hydroxybenzylpindolol as a probe. Also, the number of 125I-cyanopindolol sites is different from the number of 125I-hydroxybenzylpindolol sites. These differences are attributed to the difference in pharmacological specificity of the two ligands. 125I-cyanopindolol binds exclusively to beta-receptors, whereas 125I-hydroxybenzylpindolol binds to both beta-receptors and serotonin receptors. The ontogenesis of GppNHp dependent adenylate cyclase and of Mn2+/forskolin dependent adenylate cyclase indicate that the rate of synthesis of the catalytic component is faster than that of the GTP stimulatory component.

Adenylyl Cyclases↗

Stimulatory GTP regulatory unit Ns and the catalytic unit of adenylate cyclase are tightly associated: mechanistic consequences.

Turkey erythrocyte membranes were solubilized in the mild detergent octylpenta(oxyethylene) [CH3(CH2)7-(OCH2CH2)5OH], which possesses a high critical micelle concentration (approximately equal to 6 mM) and forms small, dynamic micelles. Both the native enzyme Ns(GDP) X C and the p[NH]ppG-preactivated species N's X p[NH]ppG X C' were found to possess the same molecular mass of 215,000 +/- 17,000 daltons. Both enzyme species migrate as a tight complex between Ns and C on both gel permeation columns and on DEAE-Sephacel columns in detergent. The two functional units, Ns and C, remain associated even in dilute detergent solutions and throughout a 300- to 400-fold purification in octylpoly(oxyethylene). These results strongly support the view that Ns and C do not come apart during the process of enzyme activation by the beta-adrenergic receptor. Furthermore, these results strongly support our previous assertion that the beta-adrenergic receptor activation of adenylate cyclase is by a simple "collision coupling" between the receptor and NsC. These results are not compatible with shuttle mechanisms that postulate that Ns physically migrates from the receptor R to the catalytic unit C and back during the activation cycle, as suggested by Citri and Schramm [Citri, Y. & Schramm, M. (1980) Nature (London) 287, 297-300] and by De Lean et al. [De Lean, A., Stadel, J. M. & Lefkowitz, R. J. (1980) J. Biol. Chem. 255, 5108-5117].

Adenylyl Cyclases↗

Receptor to effector coupling in the receptor-dependent adenylate cyclase system.

The mode of coupling between the components of hormone-regulated adenylate cyclases is discussed. In view of the structural knowledge and kinetic experiments, an attempt is made to analyze critically the current molecular models suggested for the mode of hormone stimulation and hormone inhibition of adenylate cyclase.

Adenylyl Cyclases↗