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T Costa

Publications and source records attributed to T Costa.

At least 73 records · Page 4Linked to original sources

Enhancement of thrombin receptor activation by thrombin receptor-derived heptapeptide with para-fluorophenylalanine in place of phenylalanine.

Thrombin receptor-derived peptide SFLLRNP (one-letter amino acid code) which corresponds to the N-terminal heptapeptide of tethered ligand is able to activate thrombin receptor and to stimulate the phosphoinositide (PI) turnover. The replacement of Phe-2 by Ala eliminated this activity completely, showing the crucial role of the Phe-phenyl group in receptor activation. It was found that substitution of para-fluorophenylalanine ((p-F)Phe) for Phe-2 enhanced several times the PI-turnover activity of SFLLRNP. This is the first example to date of a substitution with one order of magnitude greater increase in receptor activation. The Phe-2/Tyr substitution diminished the activity drastically (almost 2% of SFLLRNP), indicating the importance of hydrophobicity of Phe2-phenyl. The Phe-2/Leu substitution, however, diminished also the activity (less than 2% of SFLLRNP). These results suggested that highly specific hydrophobic interaction exists between Phe-2 of the tethered ligand and its binding site in thrombin receptor.

Amino Acid Sequence↗

A mutation-induced activated state of the beta 2-adrenergic receptor. Extending the ternary complex model.

We have replaced the C-terminal portion of the third intracellular loop of the beta 2-adrenergic receptor (residues 266-272) with the homologous region of the alpha 1B-adrenergic receptor. In a fashion analogous to the reciprocal mutations of the alpha 1B receptor previously described (Cotecchia, S., Exum, S., Caron, M. G., and Lefkowitz, R. J. (1990) Proc. Natl. Acad. Sci. U. S. A. 87, 2896-2900), this conservative substitution leads to agonist-independent activation of adenylyl cyclase. In addition, the constitutively active mutant receptor exhibits: (i) an increased affinity for agonists (even in the absence of guanine nucleotide-binding regulatory protein (G protein)) but not antagonists, with the extent of affinity increase being correlated with the intrinsic activity of the ligand; (ii) an increased potency of agonists for stimulation of adenylyl cyclase; and (iii) an increased intrinsic activity of partial agonists. We document that our experimental findings with the mutant receptor cannot be adequately rationalized within the theoretical framework of the Ternary Complex Model (De Lean, A., Stadel, J. M., and Lefkowitz, R. J. (1980) J. Biol. Chem. 255, 7108-7117) which postulates that receptor activation requires the agonist-promoted formation of an active, "ternary" complex of agonist, receptor, and G protein. We show, through extensive computer simulations, that an extended version of this model that includes an explicit isomerization of the receptor (R) to an active state (R*) closely models all our findings for both the mutant and the wild-type receptors. Study of such constitutively active mutant G protein-coupled receptors should help elucidate the molecular nature of the processes involved in receptor activation.

Adenylyl Cyclases↗

Quality of life in patients with prostatic cancer. A feasibility study. The Members of Quality of Life Committee of the EORTC Genitourinary Group.

BACKGROUND: In recent years, there has been a growing recognition of the need to include parameters representing the patients' view of their conditions that, therefore, are more subjective in nature. METHODS: As a first effort to introduce quality-of-life (QOL) assessment in prostatic cancer clinical trials, the European Organization for Research and Treatment of Cancer (EORTC) Genitourinary Group, in cooperation with the EORTC QOL Group, activated Protocol 30853 (orchiectomy versus goserelin acetate and flutamide in previously untreated patients with Stage M+ disease. Study Coordinator: Louis Denis). The use of patient-administered QOL questionnaires was optional, and of 327 patients, only 22% underwent pretreatment assessments. RESULTS: Psychologic distress, fatigue, social and family life, and pain are the most important to the patient on a subjective basis, and these were confirmed in relation to objective parameters. There was a discrepancy between the doctors' evaluations and the patients' opinions about subjective morbidity, namely, in regard to sexual status and pain. CONCLUSIONS: This EORTC trial revealed the reluctance of clinicians to do QOL research, partly related to feasibility problems and partly to the doctors' doubts about the value of such efforts. QOL assessment should become a mandatory part of clinical trials in prostatic cancer.

Activities of Daily Living↗

Thrombin is a regulator of astrocytic endothelin-1.

Endothelin-1, a potent vasoconstrictor of cerebral vessels, is produced by rat primary astrocytes and is subject to autostimulatory regulation in these cells. In this study we examined the effect of thrombin on astrocytic endothelins and report that endothelin-1 is released into the culture fluid in response to thrombin treatment. However, increased production of endothelin-1 is not accompanied by a concomitant increase in steady-state levels of endothelin-1 mRNA as assessed by reverse transcriptase-polymerase chain reaction, even though thrombin stimulation leads to increased inositolphospholipid turnover and activation of the nuclear factor AP1. Thus, astrocytic production of endothelin-1 may be mainly post-transcriptionally regulated in response to thrombin stimulation. In addition, two endothelin receptor genes (ET(A) and ETB) were found to be transcribed simultaneously in primary astrocyte cultures, and both thrombin and endothelin-1 stimulation result in a distinct temporary decrease in ET(A) mRNA. These studies suggest a role for thrombin in the regulation of brain perfusion through astrocytic endothelin-1 expression.

Animals↗

Constitutive activity of receptors coupled to guanine nucleotide regulatory proteins.

Adrenoceptors are prototypic members of the superfamily of seven transmembrane domain, G protein-coupled receptors. Study of the properties of several mutationally activated adrenoceptors is deepening understanding of the normal functioning of this ubiquitous class of receptors. The new findings suggest an expansion of the classical ternary complex model of receptor action to include an explicit isomerization of the receptors from an inactive to an active state which couples to the G protein ('allosteric ternary complex model'). This isomerization involves conformational changes which may occur spontaneously, or be induced by agonists or appropriate mutations which abrogate the normal 'constraining' function of the receptor, allowing it to 'relax' into the active conformation. Robert Lefkowitz and colleagues discuss the physiological and pathophysiological implications of these new insights into regulation of receptor activity.

Amino Acid Sequence↗

Mosaicism for duplication 12q (12q13-->q24.2) in a dysmorphic male infant.

We report the clinical findings in a boy with mosaicism for a duplication of chromosome 12q13.1-->q24.2. His clinical characteristics are very similar to previously reported mosaic duplications of the distal long arm of 12, as well as several cases with non-mosaic duplications. It is proposed that this represents a clinically distinguishable syndrome for 12q duplication, in mosaic or non-mosaic form.

Abnormalities, Multiple↗

A neural model of discrete and continuous modes of visual discrimination.

A simple neural model of visual pattern discrimination is presented, based on the assumption that visual discrimination is determined by the differences in activity of a certain set of filters. These filters are the input units of a three-layer network. The units of the second layer have probabilities of activation that depend on the differences in activity of the input units and in turn they determine the probabilities of activation of a layer of output units from which probabilities of correct discrimination can be predicted. This model has been used to simulate discrete and continuous modes of curved-line discrimination and the results show good agreement with experimental data found in the literature.

Computer Simulation↗

Beta gamma subunits of guanine nucleotide-binding proteins and regulation of spontaneous receptor activity: thermodynamic model for the interaction between receptors and guanine nucleotide-binding protein subunits.

We used a thermodynamic model to examine the interactions between receptor, guanine nucleotide-binding protein (G protein), and their ligands. The model describes the interactions as multiple equilibria occurring between three distinct protein species (receptor, G alpha subunit, and G beta gamma complex) and two small ligands, i.e., agonist (which interacts with receptor) and guanine nucleotide (which binds to G alpha). The equilibrium distribution of free and complexed species is determined by the total concentration of the components, the affinities that govern the biomolecular reactions, and the allosteric interactions that ligands exert on each other when they are simultaneously bound to the same species. These allosteric factors are given in terms of free energy coupling. The model explains a number of experimental observations, as follows. (i) Both GTP and GDP can reduce agonist affinity, whereas the agonist enhances the net binding of GTP and diminishes that of GDP. (ii) G beta gamma is more effective in reducing agonist-independent than agonist-dependent receptor activity. (iii) Removal of guanine nucleotides increases the ratio between agonist-independent and -dependent activation of G protein. The model leads to a number of interesting predictions. (i) Not only G alpha but also G beta gamma has effects on hormone binding. (ii) As long as the distribution of protein species is [G beta gamma] > [G alpha] > [receptor] (as often observed in the cell membrane), small changes in the concentration of G beta gamma do not alter the overall response induced by agonist. (iii) Agonist activity examined at low concentrations of guanine nucleotide is inevitably different from that observed at high concentrations, typical of intact systems. (iv) Differences in potencies and maximal effects for various guanine nucleotide analogues may reflect differences in their coupling constants that are experimentally measurable. The present model suggests several experimentally testable hypotheses that could be important in elucidating the activation mechanism and regulatory flexibility of G protein-dependent transduction systems.

Allosteric Regulation↗

Thrombin is the major serum factor stimulating phosphoinositide turnover, but not DNA synthesis in human neuroblastoma SH-EP cells.

Fetal calf serum stimulates both phosphoinositide turnover and DNA synthesis in SH-EP cells. The phosphoinositide turnover-stimulating activity of serum is largely (70%) reduced in the presence of hirudin, a blocker of thrombin activity. Yet, hirudin does not alter the ability of serum to stimulate DNA synthesis. Purified alpha-thrombin is a potent (EC50, 35 pM) stimulator of phosphoinositide turnover in SH-EP cells, but induces DNA synthesis only at much higher concentrations (10 nM-1 microM). Thus, serum thrombin accounts for most of the ability of serum to stimulate phosphoinositide hydrolysis, but not for the effect of serum on cell division, since the concentration of thrombin in serum is not sufficient to induce DNA synthesis. These data suggest that hydrolysis of inositol lipids may not be the main signalling event mediating the mitogenic effects of alpha-thrombin.

Blood↗

The epithelial phenotype of human neuroblastoma cells express bradykinin, endothelin, and angiotensin II receptors that stimulate phosphoinositide hydrolysis.

The neuroblastoma line SK-N-SH consists of distinct and interconverting cell types, which include a neuroblast phenotype (SH-SY5Y), an epithelial phenotype (SH-EP), and an intermediate cell type (SH-IN). In SH-SY5Y cells, only muscarinic receptor activation produced stimulation of phosphoinositide turnover, whereas in SH-EP cells, where muscarinic receptors are not present, the peptides bradykinin, endothelin, and angiotensin II stimulated phosphoinositide hydrolysis with EC50 values of 16, 6, and 0.7 nM, respectively, and a rank order of maximal effects of bradykinin greater than endothelin greater than angiotensin II. Fetal calf serum at concentrations between 1 and 10% was also a potent stimulator of phosphoinositide hydrolysis in SH-EP cells but not in SH-SY5Y cells. In the intermediate cell clone, SH-IN, phosphoinositide hydrolysis was stimulated not only by muscarinic receptors, but also by endothelin, bradykinin, and serum, an indication that this cell type harbors all the kinds of receptors that are differentially expressed in the other two cell types. The effects of the three peptides--bradykinin, endothelin, and angiotensin II--on phosphoinositide hydrolysis in SH-EP cells were additive, a result suggesting that the three kinds of receptors may activate distinct transducer proteins and/or phospholipase C subtypes. Pretreatment of intact SH-EP cells with pertussis toxin under conditions sufficient to ADP-ribosylate 90-95% of the endogenous guanine nucleotide regulatory protein substrates did not impair the ability of any of the receptors to stimulate phosphoinositide hydrolysis in any of the cell types. In contrast, short-term exposure to the phorbol ester 12-O-tetradecanoylphorbol 13-acetate (1 microM) abolished the stimulation of phosphoinositide hydrolysis mediated by peptide receptors in SH-EP cells and partially inhibited that by muscarinic receptors in SH-SY5Y cells. Prolonged incubation of SH-EP cells with phorbol ester resulted in a recovery of receptor responsiveness, the extent and rate of which were different for each receptor type. In contrast, there was no recovery of responsiveness for muscarinic receptors in SH-SY5Y cells. The pattern of phorbol ester-mediated effects depended on the cell rather than on the receptor type. In fact, muscarinic receptor responsiveness in SH-IN, the intermediate cell type, was desensitized by and recovered from treatment with phorbol esters in a manner more similar to peptide receptors in SH-EP than to muscarinic receptors in SH-SY5Y. These data suggest that the transduction mechanisms by which distinct receptor types are coupled to phosphoinositide hydrolysis in the three cell phenotypes differ in sensitivity to feedback regulation by protein kinase C.

Angiotensin II↗

Drug efficacy at guanine nucleotide-binding regulatory protein-linked receptors: thermodynamic interpretation of negative antagonism and of receptor activity in the absence of ligand.

The mutual effects that a hormonal ligand (H) and a guanine nucleotide regulatory protein (G protein) exert on each other when simultaneously occupying distinct sites of the receptor molecule (R) can be viewed as the molecular mechanism of drug efficacy. These effects are predictable on the basis of a model assuming that the ternary complex between the three partners (HRG) reaches equilibrium in the membrane [J. Biol. Chem. 255:7108-7117 (1980)]. Ligands can be classified as agonists, neutral antagonists, or negative antagonists, depending on whether they enhance, leave unchanged, or reduce, respectively, the spontaneous tendency of R to interact with G. Using this model and the assumption that the G protein response observed in membranes reflects the sum of ligand-independent (RG) and ligand-dependent (HRG) receptor-G protein complexes, we can explain virtually all the phenomenology reported earlier for opioid receptor-mediated stimulation of GTPase, i.e., 1) existence of ligands with both "positive" and "negative" intrinsic activity (the latter termed negative antagonists), 2) equipotency of neutral antagonists for the competitive blockade of the responses elicited both by agonists and by negative antagonists, and 3) apparent heterogeneity of binding sites for the binding isotherms of negative antagonists. The ternary complex model can also explain the differential effects of sodium on ligand binding and ligand-dependent GTPase activity, if we assume that this ion reduces the stability constant between receptor and G protein in membranes. Computer simulations predict that a negative antagonist exhibits a discrepancy between "biological" Ki (obtained by Schild plots) and true dissociation constant for the receptor, which increases as the fraction of "precoupled" receptors in the membrane increases. The demonstration of negative antagonism is definitive evidence for the existence of receptor coupling (hence activity) in the absence of ligand. Using this experimental paradigm, we show here that spontaneous receptor activity occurs in isolated membranes but not in intact NG108-15 cells.

Binding, Competitive↗

Selective interaction of beta 2- and alpha 2-adrenergic receptors with stimulatory and inhibitory guanine nucleotide-binding proteins.

In Chinese hamster ovary cells expressing recombinant beta 2-adrenergic receptors, isoproterenol enhanced cholera toxin-catalyzed ADP-ribosylation of the large form of G5 alpha. The effect was stereoselectively blocked by the enantiomers of propranolol, indicating receptor mediation. The ADP-ribosylated form of Gs alpha-subunit was resolved into a triplet in gradient gels. beta 2-Adrenergic receptors increased both the labelling and the apparent mass of the slower migrating forms of large Gs alpha, as determined by autoradiography and immunoblotting, suggesting that Gs alpha, can incorporate more than one ADP-ribose per molecule. In cells coexpressing similar amounts of beta 2-adrenergic, alpha 2-adrenergic, and m1 muscarinic receptors, beta 2 receptors stimulated the ADP-ribosylation of only large Gs and alpha 2 receptors that of only Gi; muscarinic receptors had no apparent effect. Thus, in native membranes there appears to be a selectivity for the interaction between adrenergic receptor subtypes and Gs alpha or Gi alpha subunits.

Adenosine Diphosphate Ribose↗

Marshall-Smith syndrome: new radiographic, clinical, and pathologic observations.

Radiographic, clinical, and histologic findings in two infants and a neonate with a syndrome of profoundly accelerated skeletal maturation included features closely resembling those of Marshall-Smith (MS) syndrome, but patients had dysmorphic ears as well as distinctive generalized skeletal abnormalities suggestive of a bone dysplasia. Among these was an instability at the craniocervical junction with severe spinal stenosis. These previously unrecognized abnormalities may represent uncommon manifestations within the spectrum of MS syndrome or indicate the existence of a separate disorder.

Atlanto-Axial Joint↗

Selective autoregulation of endothelins in primary astrocyte cultures: endothelin receptor-mediated potentiation of endothelin-1 secretion.

Observations that primary rat astrocytes express high-affinity binding sites for endothelins and, in addition, are capable of producing not only endothelin-3 but also endothelin-1 prompted the investigation of a possible relation between endothelin peptides and receptors in these cells. Sarafotoxin S6b, an endothelin receptor agonist, was used as a tool to study endothelin receptor-mediated changes in the secretion of endothelin-1 and -3. The effects of sarafotoxin S6b and endothelin-1 in stimulating inositolphospholipid turnover as well as in inducing AP1 in primary astrocyte cultures were found to be similar. A low cross-reactivity of sarafotoxin S6b with endothelin-1 and -3 in the endothelin radioimmunoassays used here, along with a distinctly different elution position in high-performance liquid chromatography, allowed a clear discrimination between sarafotoxin and endothelins in the culture media. Stimulation of primary rat astrocytes with 10(-7) M sarafotoxin S6b for 1 hour resulted in a substantial increase in endothelin-1 immunoreactivity in the medium. This immunoreactivity reached a peak at 3 hours and showed no further increase after 8 and 24 hours. Treatment of our cultures with phorbol myristate acetate, lipopolysaccharide, tumor necrosis factor alpha, and norepinephrine for 24 hours led to only a moderate elevation of endothelin-1 immunoreactivity. Immunoreactive endothelin-3 was not affected by any of the treatments tested. Thus, our data suggest that endothelins in primary rat astrocytes are subject to selective autoregulation, as demonstrated by the potentiation of endothelin-1 secretion after activation of glial endothelin receptors.

Animals↗

Cholera toxin differentially decreases membrane levels of alpha and beta subunits of G proteins in NG108-15 cells.

Treatment of NG108-15 neuroblastoma x glioma cells (24 h) with cholera toxin (0.1-10 micrograms/ml) resulted in a concentration-dependent reduction of the membrane levels of subunits of GTP-binding regulatory proteins (G proteins), as determined by quantitative immunoblot procedures. The extent of reduction differed for different types of subunits: the levels of Go alpha and G beta 1 were reduced by 40-50%, whereas those of G alpha common immunoreactivity and Gi2 alpha were only reduced by 10-20% following treatment with 10 micrograms/ml cholera toxin. This effect of the toxin could not be mimicked by incubation with the resolved B oligomer of cholera toxin, nor by exposure of cells to agents able to raise the intracellular levels of cAMP. Basal adenylate cyclase was stimulated in a biphasic manner by cholera toxin, being stimulated at low concentrations (0.01-10 ng/ml) and then decreased at high (0.1-10 micrograms/ml) concentrations. Thus, the down regulation of G-protein subunits produced by cholera toxin requires its (ADP-ribosyl)transferase activity but does not result from a cAMP-mediated mechanism. The toxin-mediated decrease of Go alpha in the membrane was correlated with a diminution of opioid-receptor-mediated stimulation of high-affinity GTPase activity, suggesting that opioid receptors interact with Go in native membranes of NG108-15 cells. Northern-blot analysis of cytoplasmic RNA prepared from cells treated with cholera toxin showed that the levels of mRNA coding for G beta 1 did not change. Thus, the cholera-toxin-induced decrease of G-protein subunits may not result from an alteration in mRNA levels, but may involve a direct effect of the toxin on the process of insertion and/or clearance of G proteins into and/or from the membrane. These data indicate that cholera toxin, besides catalyzing the ADP-ribosylation of Gs and Gi/Go types of G proteins, can also reduce the steady state levels of Go alpha and G beta 1 subunits in the membrane and thus alter by an additional mechanism the function of inhibitory receptor systems.

Adenosine Diphosphate Ribose↗

Spontaneous association between opioid receptors and GTP-binding regulatory proteins in native membranes: specific regulation by antagonists and sodium ions.

High affinity GTPase in membranes from NG108-15 cells was differentially affected by opioid competitive antagonists; one type of antagonist [( N,N'-diallyl-Tyr1-Aib2,3]Leu-enkephalin) reduced the basal rate of GTP hydrolysis, whereas a second type (MR 2266) produced no changes. The inhibitory effect of the "active" antagonist was stereospecifically reversed by the "inactive" antagonist, indicating that it was receptor mediated. This suggests that part of basal GTPase activity in this system results from a spontaneous interaction between opioid receptors and GTP-binding proteins (G proteins) and that some antagonists exhibit negative intrinsic activity by hindering such an interaction. The inhibitory effect of the antagonist was minimal in the presence of Na+ and maximal when Na+ was replaced by K+ in the reaction. When the ratio [Na+]/[K+] was progressively increased at constant [Cl-], total GTPase activity (i.e., net difference between activity stimulated by agonist and that inhibited by antagonist) did not change, but the activity measured in the absence of ligand was selectively decreased. Thus, Na+ does not alter the total proportion of G proteins that can be activated by ligand-occupied receptors and instead regulates the interaction between receptor and G protein in the absence of ligand. Upon examination of several opioid agonist and antagonists, we found an inverse relation between the intrinsic activity (either negative or positive) of each ligand and the sensitivity to Na+ of the GTPase elicited upon occupation of the receptor by that ligand. Sodium-mediated and ligand-mediated regulations of GTPase had identical requirements for Mg2+ [( Mg2+]free greater than 10 microM), and were both abolished with a similar potency by pertussis toxin. There was no effect of Na+ on the basal rate of GTP hydrolysis of Gi/Go purified from bovine brain. However, addition of these proteins to membranes prepared from cells that had been previously exposed to pertussis toxin partially restored both receptor- and sodium-mediated regulations of GTPase in parallel and in a concentration-dependent fashion. We conclude that sodium ions play a key role in the mechanism underlying the spontaneous interaction between "empty" receptors and G proteins in intact membranes.

Animals↗

Cholera toxin ADP-ribosylates the receptor-coupled form of pertussis toxin-sensitive G-proteins.

Cholera toxin catalyzes the ADP-ribosylation of 40 kDa pertussis toxin substrates in membranes from NG108-15 cells, which is increased in the presence of the opioid agonist DADLE. The basal ADP-ribosylation can be abolished by the opioid antagonist ICI 174864, suggesting that unoccupied opioid receptors interact spontaneously with the pertussis toxin substrates Gi/Go in the membrane. Treatment of NG108-15 cells with the opioid agonist DADLE leads to a reduction of agonist-stimulated and basal ADP-ribosylation of 40 kDa substrates catalyzed by cholera toxin. This indicates that the spontaneous interaction between opioid receptors and G-proteins is decreased in membranes of cells in which the receptor was desensitized by prolonged exposure to the agonist.

Adenosine Diphosphate Ribose↗

Guanine nucleotide-mediated inhibition of opioid agonist binding. Modulatory effects of ions and of receptor occupancy.

We have analysed the potency of GTP, GDP and their analogues in reducing [3H]DADLE binding to opioid receptors in NG 108-15 cell membranes. Under conditions where non-specific hydrolysis and transphosphorylation is inhibited, the following rank order of potency was found: GDP greater than or equal to GTP gamma S greater than GTP greater than GDP beta S greater than or equal to GDPNH2 greater than GppNHp much greater than GMP. Remarkably, the slopes for the inhibition curves of GTP, GDP and their thiosubstituted analogues, but not of GDPNH2 and GppNHp, were extremely shallow, indicating either negative cooperativity or the existence of two states for the guanine nucleotide binding proteins, that both can mediate the effect of nucleotides on agonist receptor binding. The potencies of the different guanine nucleotide analogues, except that of GppNHp, were increased by the presence of sodium or chloride ions in the assay medium. Magnesium also affected GTP-mediated inhibition of opioid agonist binding since it decreased the IC50 of the nucleotide and steepened the slope of the inhibition curve. The IC50s of nucleotides and the slopes of their inhibition curves were also dependent on the extent of receptor occupancy by the agonist. From these data we conclude that (1) either diphospho- or triphosphonucleotides can regulate agonist binding. (2) Magnesium, sodium and chloride, by acting at different components of the receptor/G protein complex produce similar effects on nucleotide mediated regulation of agonist binding. (3) A mutual influence exists between receptor occupancy by agonists and G protein-mediated guanine nucleotide effect on the receptor.

Cell Line↗