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Biomedical subjects

G H Cook

Publications and source records attributed to G H Cook.

At least 19 recordsLinked to original sources

Microtubule-associated adenylate cyclase.

Twice-cycled bovine brain or rat brain microtubule protein contains an adenylate cyclase activity that passes 0.2 micron filters, is activated 2-7-fold by 30 microM forskolin, shows modest stimulation by fluoride (especially in the presence of added AI3+), but is virtually insensitive to added guanine nucleotides. The activity is insensitive to various hormones or Ca2+/calmodulin. The adenylate cyclase is active with both Mg2+ and Mn2+ but activity is less in the presence of Mg2+ than with Mn2+. The cyclase is inhibited by agonists of the adenosine P site. It is proposed that the catalytic unit of adenylate cyclase and probably small quantities of the guanine nucleotide regulatory protein, Ns, are cycled along with microtubules.

Adenylyl Cyclases↗

Calcium-independent activation of adenylate cyclase by calmodulin.

Adenylate cyclase of Bordetella pertussis is stimulated by calmodulin by two distinct interactions. At low activator concentrations (approximately equal to 1 nM) the process is Ca2+-dependent (i.e. inhibited by EGTA added before calmodulin). High activator concentrations (approximately equal to 0.1-10 microM) stimulate adenylate cyclase also in the presence of EGTA, an effect not accounted for by residual Ca2+ or low concentrations of Ca X calmodulin, which thus appears to be due to calcium-free calmodulin. Some calmodulin dose-response curves show both phases of stimulation, separated by a plateau of activity, and half-maximal activating concentrations differ by 100-300-fold. Both effects are on the V and not the Km for ATP and are not mimicked by 10(5)-fold greater concentrations of parvalbumin or by various polyanions. In addition, adenylate cyclase stimulation at high calmodulin concentrations is greater in the presence of EGTA than in its absence. This enhancement is also produced by 1,10-phenanthroline and 8-hydroxyquinoline but not by non-chelating isomers. These compounds are poor Ca2+ chelators, stimulate at any calmodulin concentration (unlike EGTA), and suggest regulation of this adenylate cyclase by a second metal ion.

Adenylyl Cyclases↗

Forskolin stimulation of thyroid adenylate cyclase and cyclic 3',5'-adenosine monophosphate accumulation.

The diterpene forskolin is a potent (100-fold) stimulator of guinea pig thyroid cAMP accumulation with half-maximal activation occurring at 40 microM. Forskolin stimulation is more rapid than that of TSH, attaining a 5-fold increase within 1 min of exposure. The stimulation is also rapidly reversible. The diterpene does not sensitize thyroid cAMP accumulation to TSH, and the concentration yielding half-maximal response is not altered by the presence of low levels of forskolin. At maximally stimulating concentrations, the effects of TSH and forskolin on cAMP accumulation are additive. Forskolin stimulates thyroid adenylate cyclase approximately 10-fold in membranes from several species with half-maximal effects occurring at 3--9 microM through an action on the maximum velocity and not the Km for ATP. The activation of thyroid membranes is readily reversible. Guanyl nucleotides are not required for stimulation by forskolin, and they do not sensitize to forskolin. Moreover, the drug did not sensitize the membrane adenylate cyclase to guanosine 5'-[beta, gamma-imido]triphosphate or to isoproterenol and was equally effective with either Mg++ or Mn++ as the divalent cation. Forskolin stimulation is additive with that of guanyl nucleotides and F-. The site of action of forskolin in the adenylate cyclase complex is uncertain. Data from Bordetella pertussis, testicular, and S-49 lymphoma mutant cyclases suggest that one of the guanyl nucleotide regulatory proteins may be required to promote the forskolin effect. We conclude that forskolin is a useful activator of thyroid adenylate cyclase both in vitro and in intact tissue, which will be useful in elucidating the coupling process of the adenylate cyclase system and in differentiating cAMP-mediated from other forms of activation of the thyroid.

4-(3-Butoxy-4-methoxybenzyl)-2-imidazolidinone↗

Colchicine binding to antibodies.

Antibodies to colchicine have been prepared by injecting rabbits with an antigen prepared by coupling deacetylcolchicine to bovine serum albumin with a water-soluble carbodiimide. Sera of high titer were obtained with apparent dissociation constants for colchicine ranging from 5 to 17 nM. Binding was rapid and occurred at low temperatures. The chemical specificity of the binding site(s) resembled that in tubulin for the A and B rings of colchicine. Unlike tubulin, the antibody binding site tolerated numerous changes in the tropolone moiety (C ring). In contrast to tubulin, binding of colchicine to the antibody site did not promote fluorescence. The colchicine binding capacity of the antibody was high enough to prevent colchicine fluorescence in the presence of tubulin and to restore polymerization in colchicine-inhibited tubulin preparations.

Animals↗

Preactivation as a determinant for the size of thyroid adenylate cyclase.

The molecular weight of NaF-activated, Triton N-101-solubilized adenylate cyclase from bovine thyroid membranes has been measured by a combination of sucrose density centrifugation and gel exclusion chromatography. The physical parameters are: sedimentation coefficient, 6.6 S; Stokes radium 41 A; partial specific volume, 0.75 ml/g; molecular weight, 119,000. This is in contrast to the molecular weight (159,000) of the enzyme from the same source activated with guanosine 5'-(beta, gamma-imido)triphosphate. Both soluble adenylate cyclase enzymes are subject to cholera toxin-mediated ADP-ribosylation. This implies that the diminished molecular weight of the NaF-activated solubilized adenylate cyclase is a consequence of one of the following: loss of a GTP-binding protein and labeling of some other protein in the cyclase complex; loss of another protein not subject to cholera toxin labeling; or that two GTP-binding proteins normally reside within the catalytic complex and upon NaF activation one is lost.

Adenosine Diphosphate Ribose↗

Calmodulin activates prokaryotic adenylate cyclase.

The adenylate cyclase of Bordetella pertussis is stimulated 100- to 1000-fold in a dose-dependent manner by calf brain calmodulin. The system has the following properties. (i) The activation is prevented by ethylene glycol bis(beta-aminoethyl ether)-N,N,N',N'-tetraacetic acid and restored by Ca2+. (ii) Oxidation of the methionine residues of calmodulin abolishes the ability to activate the cyclase. (iii) Trifluoperazine inhibits calmodulin-activated cyclase. (iv) A troponin C preparation stimulates the B. pertussis cyclase with < 0.01 the potency of calmodulin. Although calmodulin has not been demonstrated in prokaryotes, this is an example of a (eukaryotic) calmodulin effect in a prokaryote.

Adenylyl Cyclases↗

A protein activator for the adenylate cyclase of Bordetella pertussis.

The activity of Bordetella pertussis extracytoplasmic adenylate cyclase is 100-fold higher in organisms grown on blood agar than in those grown in synthetic medium. This increase in activity is due to in vivo activation of the enzyme by a factor present in erythrocytes. Activation also occurs in killed or disrupted organisms. The activator can be separated from heme proteins and has been purified approximately 100-fold from erythrocytes, yielding material of approximately 105,000 daltons. It is sensitive to trypsin and alpha-chymotrypsin and exhibits considerable heat stability. Activation of cyclase in intact B. pertussis organisms exhibits a lag of 3 to 4 min and is not reversed by washing. Response to the activator decreases with increasing purification of the adenylate cyclase and is absent in the pure enzyme. The activation does not appear to be proteolytic and does not appear to change access to the substrate, ATP. The activator has no effect on a number of eukaryotic cyclases. We conclude that this is a new type of activation and that the activator differs from all those previously described.

Adenylyl Cyclases↗

Soluble adenylate cyclase from thyroid membranes.

Adenylate cyclase from purified beef thyroid membranes has been solubilized by the use of Triton N-101 after preactivation with guanosine 5'-(beta, gamma-imido)-triphosphate. The soluble activity passed a 0.22- micron filter, was not sedimented at 100,000 X g for 2 h, and behaved like aldolase in sucrose density gradients and on Sepharose 6B. From comparison of the sedimentation in D2O and H2O the partial specific volume was found to be like that of globular proteins (0.75 +/- 0.006), hence little detergent appeared to be bound to the enzyme. The sedimentation coefficient was 7.4 +/- 0.15, the Stokes radius 45 A, and the molecular weight 159,000. Prestimulation by thyrotropin did not survive solubilization. The stimulation produced by guanosine 5'-(beta, gamma-imido)triphosphate persisted as did the more active state resulting from pretreatment with both this nucleotide plus thyrotropin. Thyrotropin did not stimulate the solubilized enzyme. The Km for ATP, thermal stability, and inhibition by Ca2+ were identical for the membrane-bound and soluble enzyme, while the pH optimum was increased 0.5 unit in the latter. Polyanions and phenothiazines inhibited both preparations equally, whereas only membranes responded to stimulation by polylysine and ribonuclease.

Adenylyl Cyclases↗

Melittin interactions with adenylate cyclase.

Melittin, a basic polypeptide from bee venom, inhibits basal and thyrotropin-stimulated adenylate cyclase of beef thyroid membranes with a Ki approximately 10 micron. Although this property resides in the basic C-terminal and not the N-terminal portion of the molecule, inhibition is due primarily to its detergent-like nature rather than charge effects. There is also a small enhancing effect of both basal and thyrotropin-stimulated adenylate cyclase of 0.3-3 micron melittin.

Adenylyl Cyclases↗

Activation of steroidogenesis and adenylate cyclase by adenosine in adrenal and Leydig tumor cells.

Steroidogenesis by Y-1 adrenal tumor cells in culture is stimulated by ATP, adenyl-5'-yl imidodiphosphate (App(NH)), adenosine 5'(beta, alpha-methylene)triphosphate (App(CH2)p), ADP, AMP, NAD, FAD, and adenosine but not by adenine or other nucleoside triphosphates. ATP, App(NH)p, App(CH2)p, and adenosine are active in the micromolar range. Like adrenocorticotropic hormone (ACTH), the onset of stimulation is immediate and occurs to the same extent. Also active are 2'- and 5'-deoxyadenosine and 2-chloroadenosine whereas adenine xyloside, L-riboside, or arabinoside have very low activity. Stimulation is accompanied by rounding of the cells. Dipyridamole, an inhibitor of adenosine transport, increased the response to low concentrations of adenosine, suggesting that adenosine acts externally. Stimulation of steroidogenesis by adenosine or phosphorylated adenosine compounds fails to occur in the presence of crystalline adenosine deaminase, and the effect of the enzyme on adenosine, ATP, or NAD stimulation is reversed by the competitive inhibitor erythro-9-[3-(nonane-2-ol)]adenine. This suggests that the enzyme acts specifically on adenosine and a requirement for the conversion of the above compounds to adenosine seems probable. The inhibition of cAMP effects by adenosine deaminase suggests that some of its effects are also mediated by conversion to adenosine. Similar stimulation is seen in I-10 Leydig tumor cells, but an ACTH-resistant mutant of Y-1 cells, called OS-3, is relatively resistant to adenosine. Adenosine and 2-chloroadenosine stimulate adenylate cyclase in membranes from Y-1 and I-10 cells at concentrations slightly greater than are effective for steroidogenesis. Other nucleosides are ineffective. Like the NH2-terminal 24 residues of adrenocorticotropic hormone (1-24 ACTH), the adenosine effect in Y-1 membranes is rapid and is on the Vmax intercept (versus ATP) and not on the Km. In contrast to steroidogenesis, adenosine is only a partial agonist for adenylate cyclase. It effect occurs in the presence of ITP, GTP, or guanyl-5'-yl imidodiphosphate (Gpp(NH)p). Theophylline inhibits adenosine-stimulated steroidogenesis. Inhibition of adenylate cyclase occurs in the same concentration range but is of the mixed type.

Adenosine↗

Choleragen stimulates steroidogenesis and adenylate cyclase in cells lacking functional hormone receptors.

Choleragen stimulates steroid secretion and adenylate cyclase in three cell lines, adrenal tumor line (Y-1), a corticotropin-resistant mutant derived from Y-1 called OS-3, and a receptor-deficient Leydig tumor line (I-10). Sensitivity for half-maximal stimulation varies from 3 to 36 pM choleragen, the I-10 line being the most sensitive. Latency before the onset of steroidogenesis is longer in OS-3 and I-10 cells than in the Y-1 line. In both OS-3 and I-10 cells choleragen stimulates adenylate cyclase whether ITP or 5'-guanylylimidodiphosphate is the regulatory cofactor used. In addition to the responses of the receptor-deficient lines, choleragen does not, during its latency, block the response to corticotropin in Y-1 cells; corticotropin does not block binding of 125I-labeled choleragen to Y-1 cells; gangliosides do not interfere with the corticotropin-induced stimulation of Y-1 cells. We conclude that the corticotropin and choleragen receptors are different.

Adenylyl Cyclases↗

Endotoxic lipopolysaccharides stimulate steroidogenesis and adenylate cyclase in adrenal tumor cells.

Lipopolysaccharides (endotoxins) from Escherichia coli, Serratia marcesens and Salmonella typhosa stimulated steroid production in Y-1 adrenal tumor cells in culture with a latent period of 3-4 h. Lipid A, derived from Escherichia coli lipopolysaccharide, also stimulated steroidogenesis. Lipopolysaccharides and lipid A also stimulate adenylate cyclase activity and cause rounding of the cells. In contrast, lipopolysaccharides do not stimulate steroidogenesis in receptor-deficient adrenal tumor cells (OS-3) or Leydig tumor cells (I-10). This tends to rule out contamination by enterotoxin to which these lines respond. Although both hormone and lipopolysaccharide responses are lost in these lines, there was no interaction between these sites as judged by the failure of lipopolysaccharides to block, during their latency, the response to corticotropin in Y-1 cells. The possibility that the lipopolysaccharide effect is one on membrane conformation is discussed.

Adenylyl Cyclases↗

Charge effects in the activation of adenylate cyclase.

Polycations, including ribonuclease A, ribonuclease S protein and peptide, spermine, spermidine, and polylysines, enhance unstimulated and stimulated adenylate cyclase activity of beef thyroid membranes at low concentrations and inhibit these activities at high concentrations. Peak polylysine stimulation occurs with degrees of polymerization of 6 to 14, and for large polymers a potency limit for this maximum is reached at 4 X 10(-5) M expressed as lysine residues. Both enhancement and inhibition appear to be due to charge-charge interactions and are abolished by KC1. Polyanions are inhibitory only. The biphasic effect of polycations is seen on basal cyclase activity, occurs with prostaglandin E1- and 5'-guanylyl-imidodiphosphate-stimulated cyclase, but is most striking with thyrotropin. There is little enhancement of F--activated cyclase. The enhancement is not sensitive to changes in pH, Mg2+, or regenerating system and does not correlate with the stability constants between polycations and ATP. We suggest that the polycation effect is a general, electrostatic effect on membrane conformation and is not restricted to a particular receptor domain.

Adenylyl Cyclases↗