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A Christopoulos

Publications and source records attributed to A Christopoulos.

At least 37 records · Page 2Linked to original sources

Qualitative and quantitative assessment of relative agonist efficacy.

Historically, the ability of a ligand to bind to its receptor and the ability to subsequently activate that receptor have been described as the properties of affinity and intrinsic efficacy, respectively. These properties were originally believed to be independent of one another; both are possessed by ligands classed as "agonists," and they have served as the quantitative foundation of the drug and receptor classification process. Although affinity has been interpreted readily in physicochemical terms, equivalent molecular models for efficacy remain elusive. In recent times, there has been a significant paradigm shift in our understanding of the interrelationship between affinity and intrinsic efficacy, particularly on theoretical grounds, yet the actual methods available to measure these parameters remain largely operational. Nevertheless, a number of approaches, based on both functional measurements and radioligand binding studies, are available to quantify agonist efficacy on a relative scale and, to date, these remain the most practical. This commentary discusses the most common of these methods, their advantages and limitations, the dependence of the expression of agonism on the chosen assay system, and the impact of recent biochemical and molecular biological advances on the study of efficacy. Additionally, some of the more contemporary theories regarding the molecular nature of efficacy are briefly discussed, as well as the caveats that always must be borne in mind when any determinations of relative agonist efficacy are made.

Animals↗

Regulation of acetylcholine binding by ATP at the muscarinic M(1) receptor in intact CHO cells.

ATP may have a modulatory effect on cholinergic transmission, as it is known that ATP is released as a co-transmitter with acetylcholine from nerve terminals. The ability of ATP to influence the binding of acetylcholine to the M(1) muscarinic acetylcholine receptor expressed in intact CHO cells was investigated. In competition binding experiments, acetylcholine completely inhibited the binding of [3H]N-methylscopolamine, but yielded a shallow competition isotherm that was best described in terms of two affinity states. When these experiments were repeated in the presence of 1 mM ATP, the acetylcholine competition curve was better described in terms of a single, low-affinity state with a Hill slope not significantly different from unity. This modulatory effect of ATP was completely reversed by the addition of the P(2) purinoceptor antagonist, suramin, to the assay medium. When the competition between the muscarinic receptor antagonist, atropine, and [3H]N-methylscopolamine was investigated, however, ATP was unable to modulate the binding of atropine, which was consistent with a one-site binding model in each instance. In contrast to the intact cell studies, ATP did not affect either affinity state of acetylcholine binding when studied in homogenate preparations. The results of the present study indicate that ATP, acting via endogenously expressed purinoceptors, is able to influence agonist binding to the M(1) muscarinic acetylcholine receptor via a cross-talk that requires the functional integrity of intact CHO cells.

Acetylcholine↗

Characterization of the subtype selectivity of the allosteric modulator heptane-1,7-bis-(dimethyl-3'-phthalimidopropyl) ammonium bromide (C7/3-phth) at cloned muscarinic acetylcholine receptors.

The present study investigated the interaction between the muscarinic acetylcholine receptor (mAChR) allosteric modulator heptane-1,7-bis-(dimethyl-3'-phthalimidopropyl) ammonium bromide (C(7)/3-phth) and the orthosteric antagonist [3H]N-methylscopolamine ([3H]NMS) at the five cloned human mAChRs expressed in Chinese hamster ovary cells. Equilibrium binding studies, using two different concentrations of radioligand, showed the interaction between C(7)/3-phth and [3H]NMS to be characterized by different degrees of negative cooperativity, depending on the receptor subtype. The modulator exhibited the highest affinity (85 nM) for the unoccupied M2 receptor and the lowest affinity for the unoccupied M5 receptor, the latter being approximately 100-fold lower. In contrast, the highest degree of negative cooperativity was observed at the M5 receptor, whereas lowest negative cooperativity was found at the M1 and M4 receptors. Non-equilibrium dissociation kinetic studies also confirmed the allosteric properties of C(7)/3-phth at all five mAChRs and yielded independent estimates of the modulator affinity for the occupied receptor. The latter estimates showed good agreement with those calculated using parameter values determined from the equilibrium experiments. The present results extend previous findings that C(7)/3-phth is a potent allosteric modulator at mAChRs, particularly the M2 subtype, and also highlight the effects of cooperativity on apparent drug-receptor subtype selectivity.

Allosteric Regulation↗

The generation of nitric oxide by G protein-coupled receptors.

The highly reactive free radical gas, nitric oxide, serves a variety of biomodulatory functions and has been implicated in a growing array of physiological and pathophysiological states. The striking differences between this labile substance and other, more conventional, signaling molecules highlight the tight degree of nitric oxide regulation that is required in order to maintain appropriate cellular homeostasis. The generation of nitric oxide represents a common component of the signal transduction pathways of a number of chemical signaling molecules that act via binding to G protein-coupled receptors. This review focuses on the relationship between this receptor superfamily, the generation of nitric oxide via the actions of the nitric oxide synthases and some of the inter- and intracellular roles of nitric oxide.

Animals↗

Upper eyelid orbicularis oculi flap with tarsoconjunctival island for reconstruction of full-thickness lower lid defects.

The reconstruction of full-thickness defects of the lower eyelid after tumor resection is a challenging operation. The great number of techniques for these defects shows that none of them is the operation of choice. The method of reconstruction will be chosen according to the extent of the defect, the missing components of the eyelid structure, the age of the patient, and the quantity and the quality of the surrounding tissues. In this article, we propose, under specific indications, the use of a pedicled myocutaneous orbicularis oculi flap with a tarsoconjunctival island from the upper eyelid to reconstruct full-thickness lower lid defects. The more choices in a surgeon's armamentarium, the more easily the difficult problems of periorbital surgical oncology will be resolved.

Aged↗

Pharmacological analysis of the novel mode of interaction between xanomeline and the M1 muscarinic acetylcholine receptor.

Previous findings in our laboratory suggested that the M1 muscarinic acetylcholine receptor (mAChR) agonist xanomeline exhibits a novel mode of interaction that involves persistent binding to and activation of the M1 mAChR, subsequent to extensive washout, as well as a possible insurmountable element. In the present study, we examined this interaction in greater detail, using Chinese hamster ovary cells transfected with the genes for the M1 mAChR and neuronal nitric oxide synthase. Pretreatment of cells with xanomeline, followed by extensive washout, resulted in elevated basal levels of neuronal nitric oxide synthase activity that were suppressed by the antagonists atropine or pirenzepine in a concentration-dependent manner. Analysis of the data yielded estimates of Schild slope factors and pKB values for the antagonists that were consistent with a model of simple competition between these latter agents and the persistently bound form of xanomeline. The ability of the antagonists to produce parallel dextral shifts of the concentration-response curves to carbachol and xanomeline was also investigated. The interaction between xanomeline and pirenzepine appeared to be insurmountable, but this may have been due to an equilibrium artifact. In contrast, the interaction between xanomeline and atropine conformed to a model of competition, indicating that the mode of interaction of free xanomeline at the M1 mAChR is pharmacologically identical with that of the persistently bound form. Radioligand binding studies also showed that the presence of various concentrations of xanomeline had no significant effect on the calculated affinity of atropine or pirenzepine in inhibiting the binding of [3H]N-methylscopolamine. Overall, these findings suggest that the persistent attachment of xanomeline to the M1 mAChR does not prevent this agonist from interacting with the classic binding site in a competitive fashion.

Animals↗

Use of a spreadsheet to quantitate the equilibrium binding of an allosteric modulator.

Using the program Microsoft EXCEL, a spreadsheet was developed for constrained, simultaneous analysis of multiple datasets obtained from equilibrium binding experiments, according to an allosteric model of interaction. This approach was used to quantitate the interaction between the modulator (heptane-1,7-bis (dimethyl 3'-phthalimidopropyl) ammonium bromide) (C7/3-phth) and the radioligands [3H]N-methylscopolamine and [3H]quinuclidinyl benzilate at cortical and atrial muscarinic receptors. The interaction between various concentrations of the radioligands and C7/3-phth, in the guinea pig atrium and in the rat cerebral cortex, could be well described by the allosteric model. The affinity of C7/3-phth for unoccupied atrial receptors was significantly higher than for cortical receptors. The negative cooperativity between [3H]quinuclidinyl benzilate and the modulator was higher in cortex than that between the modulator and [3H]N-methylscopolamine. It is suggested that the described method has wide applicability because of the extensive availability of spreadsheet programs, the analytical advantages offered by constrained, simultaneous nonlinear regression and the ability to adapt the spreadsheet to almost any model of ligand-receptor interaction.

Allosteric Regulation↗

Assessing the distribution of parameters in models of ligand-receptor interaction: to log or not to log.

It is quite common to see experimental data analysed according to a variety of models of ligand-receptor interaction. Often, parameters derived from such models are compared statistically. The most commonly employed statistical analyses contain explicit assumptions about the underlying distributions of the model parameters being compared, yet the validity of these assumptions is not often ascertained. In this article, Arthur Christopoulos describes a general approach to Monte Carlo simulation of data, and outlines how the analysis of such simulated data may be used to address the question of the distribution of model parameters. The results of such an exercise can guide the researcher to the appropriate choice of statistical test or data transform.

Ligands↗

On the unique binding and activating properties of xanomeline at the M1 muscarinic acetylcholine receptor.

We investigated the molecular nature of the interaction between the functionally selective M1 muscarinic acetylcholine receptor (mAChR) agonist xanomeline and the human M1 mAChR expressed in Chinese hamster ovary (CHO) cells. In contrast to the non-subtype-selective agonist carbachol, xanomeline demonstrated M1 mAChR binding that was resistant to extensive washout, resulting in a significant reduction in apparent N-[3H]methylscopolamine saturation binding affinity in intact cells. Functional assays, using both M1 mAChR-mediated phosphoinositide hydrolysis and activation of neuronal nitric oxide synthase, confirmed that this persistent binding resulted in elevated basal levels of system activity. Furthermore, this phenomenon could be reversed by the addition of the antagonist atropine. However, pharmacological analysis of the inhibition by atropine of xanomeline-mediated functional responses indicated a possible element of noncompetitive behavior that was not evident in several kinetic and equilibrium binding experimental paradigms. Taken together, our findings indicate for the first time a novel mode of interaction between an mAChR agonist and the M1 mAChR, which may involve unusually avid binding of xanomeline to the receptor. This yields a fraction of added agonist that is retained at the level of the receptor compartment to persistently bind to and activate the receptor subsequent to washout. The results of the current study suggest that elucidation of the mechanism or mechanisms of interaction of xanomeline with the M1 mAChR is particularly important in relation to the potential therapeutic use of this agent in the treatment of Alzheimer's disease.

Animals↗

Pharmacological analysis of the mode of interaction of McN-A-343 at atrial muscarinic M2 receptors.

The mode of interaction of the muscarinic M2 receptor partial agonist, McN-A-343 (4-(m-chlorophenylcarbamoyloxy)-2-butynyltrimethylammonium), was investigated in the electrically-driven guinea-pig left atrium. Comparison of the negative inotropic responses to this agent with those of the full agonist, carbachol, followed by operational model-fitting, yielded estimates of the dissociation constant (KA) and efficacy (tau) of McN-A-343. Following partial receptor inactivation with propylbenzylcholine mustard, the properties of McN-A-343 as an inhibitor of the carbachol-mediated responses were assessed. Analysis of the data, according to both competitive and allosteric models of interaction, favored the former model. The log KB of McN-A-343 as an antagonist was - 4.65+/-0.06, and was not significantly different from the log KA of this agent as an agonist.

(4-(m-Chlorophenylcarbamoyloxy)-2-butynyl)trimethy↗

Novel persistent activation of muscarinic M1 receptors by xanomeline.

The muscarinic agonists, xanomeline and carbachol, displayed similar intrinsic activities in stimulating neuronal nitric oxide synthase at muscarinic M1 receptors in Chinese hamster ovary (CHO) cells, with xanomeline being more potent. Pre-incubation (1 h) with 1 microM xanomeline, followed by extensive washing, resulted in a significantly elevated basal response, which was absent on co-incubation with atropine. This phenomenon was not observed with carbachol. This is the first report of a persistent, receptor-activating effect of a muscarinic agonist.

Animals↗

Kinetic studies of co-operativity at atrial muscarinic M2 receptors with an "infinite dilution" procedure.

The effects of two competitive antagonists and two allosteric ligands on the rate of dissociation of [3H]N-methylscopolamine ([3H]NMS) were studied at atrial muscarinic acetylcholine M2 receptors by the technique of "infinite dilution." The dissociation rate for [3H]NMS, initiated by diluting the incubation mixture in a 100-fold volume of buffer, was 0.61 +/- 0.10 min-1. Addition of the competitive antagonists, atropine or NMS, to the dilution medium did not alter the observed [3H]NMS dissociation rate. In contrast, gallamine and the bisquaternary, heptane-1,7-bis-(dimethyl-3'-phthalimidopropyl-ammonium bromide) (C7/3'-phth), produced a concentration-dependent slowing of the dissociation rate of [3H]NMS, with IC50 values of 7.5 microM and 196 nM, respectively. Gallamine exhibited an increased modulatory potency when equilibration with the tissue was allowed prior to dilution. The findings showed that the influence of low concentrations of allosteric modulators on the [3H]NMS dissociation rate may be demonstrated separately from any effects on association rate, and that the contact time with the allosteric ligand may influence the extent of these effects.

Allosteric Regulation↗

Interaction of ebeinone, an alkaloid from Fritillaria imperialis, at two muscarinic acetylcholine receptor subtypes.

The ability of the alkaloid, ebeinone, isolated from Fritillaria imperialis, to act at muscarinic M2 and M3 acetylcholine receptors was investigated. In functional studies with guinea-pig left atrium, ebeinone was found to be ca. 10-fold more active as an antagonist of responses to carbachol (CCh) than in either guinea-pig ileum or trachea. Estimates of dissociation constants (KB values) in the three tissues were 77.3, 931.1 and 547.0 nM, respectively. Inhibition binding studies in rat atria with the non-selective antagonist [3H]N-methylscopolamine ([3H]NMS) showed ebeinone to have a KI value of 80.9 nM. Comparison of ebeinone with pancuronium, another steroid-like compound with a similar KB value at the muscarinic M2 receptor, found both compounds able to retard the dissociation rate of [3H]NMS in atria, indicating an allosteric mode of interaction at the M2 receptor. It is concluded that ebeinone exhibited a higher affinity for muscarinic M2 receptors than for M3 receptors in the guinea-pig and that it interacted allosterically at rat atrial M2 receptors.

Alkaloids↗

Application of an allosteric ternary complex model to the technique of pharmacological resultant analysis.

A simple ternary complex model of drug-receptor interaction has been used to extend the procedure of pharmacological resultant analysis, enabling the quantitation of interactions between allosteric modulators and orthosteric antagonists. Equations derived in the theoretical treatment were used to analyse functional data for the interaction between the allosteric modulator gallamine and the orthosteric antagonist scopolamine, with oxotremorine as the agonist, at rat tracheal muscarinic acetylcholine receptors. Quantitative estimates of the affinity of gallamine for the allosteric site (pKz = 4.7) and the extent of negative, heterotropic co-operativity between gallamine and scopolamine (alpha' = 13.1) were obtained. Furthermore, an alternative direct, model-fitting approach, that does not rely on the determination of concentration ratios, was also developed, and yielded similar results. It is suggested that the approach presented in this paper is useful for quantifying interactions between orthosteric antagonists and allosteric modulators, particularly when the extent of co-operativity is low or the modulators possess multiple pharmacological properties, or both.

Animals↗

Three allosteric modulators act at a common site, distinct from that of competitive antagonists, at muscarinic acetylcholine M2 receptors.

Functional studies were conducted on guinea pig atrial muscarinic acetylcholine M2 receptors with the allosteric modulators heptane-1,7-bis(dimethyl-3'-phthalimidopropyl)ammonium bromide (C7/3'-phth), gallamine and alcuronium to determine whether these ligands are able to recognize a common accessory site. The three modulators inhibited the negative inotropic response to carbachol in this tissue. When used in combination, C7/3'-phth and gallamine or C7/3'-phth and alcuronium gave dose ratios that were either additive or underadditive. In contrast, the combinations of C7/3'-phth or alcuronium with the competitive antagonists, N-methylscopolamine or atropine, yielded supra-additive dose ratios. The data could be reconciled with a model involving a ternary complex between (1) the receptor, (2) carbachol, N-methylscopolamine or atropine acting at the orthosteric binding site and (3) C7/3'-phth, alcuronium or gallamine acting at a common, allosteric site with varying degrees of heterotropic cooperativity.

Alcuronium↗

Interactions of agonists with an allosteric antagonist at muscarinic acetylcholine M2 receptors.

The interaction of heptane-1,7-bis(dimethyl-3'-phthalimidopropylammonium bromide) (C7/3'-phth), with several agonists, was investigated at the muscarinic M2 receptor in guinea-pig left atria. C7/3'-phth shifted concentration-response curves for the agonists, carbachol, oxotremorine-M and (+)-cis-dioxolane, to the right in a parallel fashion. Arunlakshana-Schild regressions of the data yielded slopes significantly different to unity, suggesting non-competitive antagonism. Non-linear regression analysis, using an equation based on allosteric modulation, gave quantitative estimates of co-operativity (alpha values) and the dissociation constant of C7/3'-phth (KB). In all cases, the KB estimates for C7/3'-phth were not significantly different. Increasing the carbachol contact time 10-fold did not significantly influence the KB or the alpha value obtained with C7/3'-phth. Changing from Krebs to Tyrode solution did not significantly alter the KB for C7/3'-phth, although alpha values obtained were consistently lower in Tyrode solution, suggesting that the allosteric action may be sensitive to buffer composition. A 4-fold higher degree of negative, heterotropic co-operativity between C7/3'-phth and agonists than between C7/3'-phth and competitive antagonists was also found.

Acetylcholine↗