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D B Bylund

Publications and source records attributed to D B Bylund.

At least 19 recordsLinked to original sources

Subtypes of alpha 1- and alpha 2-adrenergic receptors.

The adrenergic receptors are members of the superfamily of G protein-coupled receptors. There are three major types of adrenergic receptors: alpha 1, alpha 2, and beta. Each of these three major types can be divided into three subtypes. Within the alpha 1-adrenergic receptors, alpha 1A and alpha 1B subtypes have been defined pharmacologically on the basis of reversible antagonists, such as WB4101 and phentolamine, and the irreversible antagonist chloroethylclonidine. In at least some tissues the mechanism of action of the alpha 1A subtype is related to activation of a calcium channel, whereas the alpha 1B receptor exerts its effect through the second messenger inositol trisphosphate. Both of these receptor subtypes as well as a third, the alpha 1C, have been identified by molecular cloning. Three pharmacological subtypes of the alpha 2-adrenergic receptor have also been identified. Prototypic tissues and cell lines in continuous culture have been developed for each of these subtypes, which facilitated their study. The definition of the alpha 2 subtypes has been based on radioligand binding data and more limited functional data. All three subtypes have been shown to inhibit the activation of adenylate cyclase and thus reduce the levels of cAMP. Three alpha 2-adrenergic receptor subtypes have been identified by molecular cloning in both the human and rat species. There is reasonable agreement between the pharmacological identified subtypes and those identified by molecular cloning.

Adrenergic alpha-Antagonists

Synthesis and binding to beta-adrenergic receptors of p-aminobenzyl analogues of practolol and atenolol.

The p-aminobenzyl analogues (8a and 8b, respectively) of the cardioselective beta-adrenergic receptor antagonists practolol and atenolol were prepared from the corresponding phenoxymethyloxiranes in 30 and 13% yields, respectively. The dissociation constants for the beta-adrenergic receptor were measured in membrane preparations of rat heart and lung. In membranes from the heart (which contain mostly beta 1-adrenergic receptors), the affinities of the derivatives and parent compounds were similar. By contrast, in membranes from the lung (which contain mostly beta 2-adrenergic receptors), the derivatives were more potent than the parent compounds. Thus, the cardioselectivities of the p-aminobenzyl analogues 8a and 8b were about one-sixth those of the respective parents.

Adrenergic beta-Antagonists

Differential localization of alpha 2-adrenergic receptor subtypes in brain.

The pharmacological identification and characterization of subtypes of alpha 2-adrenergic receptors have been confirmed by molecular biological investigations. Using receptor autoradiographic techniques, it has been possible to show regions of the brain where alpha 2 agonist binding ([3H]para-aminoclonidine) is preferentially labeling the presumed guaninenucleotide-sensitive, high-affinity conformations of the alpha 2 receptor. Careful examination of autoradiograms generated using the tritiated antagonists yohimbine, idazoxan, and rauwolscine also indicates some disparity in the regions occupied by these radiolabeled ligands. Inhibition of [3H]rauwolscine binding with the subtype selective compounds, ARC-239, or oxymetazoline demonstrates that there are discrete regions of the brain where one receptor subtype predominates over the other. These studies indicate that previous investigations utilizing the agonist para-aminoclonidine as the ligand for obtaining labeling of alpha 2 receptors have overlooked some regions of binding due to the subtype selectivity of this ligand. A more complete localization of alpha 2-adrenergic receptors can be obtained using the tritiated antagonist rauwolscine, and the differential distribution of at least two subtypes of the alpha 2 receptor can be obtained by selective inhibition of this binding.

Adrenergic alpha-Agonists

Alpha-2A is the predominant alpha-2 adrenergic receptor subtype in human spinal cord.

alpha-2 Adrenergic receptors can be subdivided into four subtypes based on their pharmacologic properties. The subtype of alpha-2 adrenergic receptor present in human spinal cord has not been reported previously. The affinities of nine alpha-2 subtype-selective drugs for the alpha-2 adrenergic receptor in human spinal cord homogenates were determined using [3H]rauwolscine and [3H]RX821002. These drug affinities (pKi values) were highly correlated with those obtained in a tissue or cell line containing only the alpha-2A adrenergic subtype (correlation coefficient of 0.99 and 0.98 for human platelet and HT29 cells, respectively). In contrast, the correlation of pKi values for the human spinal cord with tissues or cell lines containing other adrenergic receptor subtypes was poor. The correlation coefficients for alpha-2B (neonatal rat lung), alpha-2C (OK cell), and alpha-2D (bovine pineal gland) were 0.15, 0.68, and 0.81, respectively. These data suggest that the predominant alpha-2 adrenergic subtype present in human spinal cord is the alpha-2A subtype. Both [3H]rauwolscine and [3H]RX821002 appeared to label a single class of binding sites. The alpha-2 adrenergic receptor density was significantly greater in the sacral region of the cord as compared to either the lumbar or thoracic regions.

Adrenergic alpha-Antagonists

Desensitization and down-regulation of the 5-hydroxytryptamine1B receptor in the opossum kidney cell line.

In the opossum kidney cell line the 5-hydroxytryptamine (serotonin; 5-HT)1B receptor is negatively coupled to adenylyl cyclase via a Gi protein. Preincubation of opossum kidney cell line cell monolayers with 5-HT resulted in 5-HT1B receptor-mediated desensitization expressed as a 4-fold rightward shift of the dose-response curve and a 10 to 29% decrease of maximal inhibition of forskolin-stimulated cyclic AMP production. These moderate decreases in potency and efficacy were concentration- and time-dependent. Maximal desensitization occurred with 3 hr of 5-HT preincubation. Preincubation with 5-HT caused no change in the potency or efficacy of alpha-2 adrenergic agonist-mediated inhibition of forskolin-stimulated cyclic AMP production. Therefore, the desensitization caused by 5-HT preincubation appears to be homologous. Down-regulation of the 5-HT1B receptor, assessed with the high affinity radioligand [125I]iodocyanopindolol, also occurred, and was concentration- and time-dependent. Maximum down-regulation of 40% occurred after 20 hr of exposure to 10 microM 5-HT. These results demonstrate that, like other receptors coupled to the inhibition of adenylyl cyclase, exposure of 5-HT1B receptors to an agonist causes desensitization of the functional response followed by down-regulation of the receptor.

Animals

Pharmacological characteristics of alpha 2-adrenergic receptors: comparison of pharmacologically defined subtypes with subtypes identified by molecular cloning.

On the basis of extensive radioligand data and more limited functional data, three pharmacological subtypes of alpha 2-adrenergic receptors have been identified. More recently, three human genes or cDNAs for alpha 2-adrenergic receptors have been identified by molecular cloning. The relationship, however, among the pharmacologically defined subtypes and those identified by molecular cloning has not been clear. In order to resolve this issue, we have compared the pharmacological characteristics of the receptors identified by molecular cloning and expressed in COS-7 cells with the characteristics of the pharmacologically defined receptors in their respective prototypic tissue or cell line. The affinities (Ki values) of 12 subtype-selective alpha 2-adrenergic antagonists were determined for the alpha 2 receptor in the six preparations, by radioligand binding. Correlation analyses of the pKi values indicate that the alpha 2A subtype, as defined in the HT29 cell line, the alpha 2B receptor of the neonatal rat lung, and the alpha 2C subtype, as defined in an oppossum kidney cell line, correspond to the cloned human alpha 2-C10, alpha 2-C2, and alpha 2-C4 receptor subtypes, respectively.

Adrenergic alpha-Antagonists

Synthesis and biodistribution of the alpha 2-adrenergic receptor antagonist (11C)WY26703. Use as a radioligand for positron emission tomography.

The purpose of these experiments was to label an alpha 2-adrenergic receptor ligand with a positron emitting isotope and then test this radioligand in vivo. No-carrier-added [11C]WY26703 was synthesized by methylation of its desmethyl precursor, WY27050 with [11C]H3I followed by purification with HPLC in 14% yield in a synthesis time of 35 min from EOB. Ki values for unlabeled WY26703, ranged from 0.52-1.55 nM in tissues that express a single alpha 2-adrenergic receptor subtype. Tail vein injections of [11C]WY26703 in mice revealed that the compound was distributed in the brain, heart, lungs, spleen, and kidneys. In the brains of rats treated with atipamezole, an alpha 2-adrenergic receptor antagonist, there was no decrease in [11C] accumulation indicating a lack of observable specific binding of the radioligand. When brain tissue was homogenized and filtered, however, atipamezole decreased [11C] activity by 53%. Therefore, [11C]WY26703 crosses the blood-brain barrier and specifically binds to alpha 2-adrenergic receptors with high affinity. Atipamezole treatment decreased only the area of the locus coeruleus [11C] value of the various regions of the brain. The affinity, however, of [11C]WY26703 does not appear to distinguish alpha 2-receptors from nonspecific binding sites. PET study of [11C]WY26703 in a Rhesus monkey showed that influx of [11C]WY26703 into the brain was high for the first few minutes but radioactivity then declined rapidly and did not retain in a specific brain region. This suggests that [11C]WY26703 may not be a useful ligand for imaging human alpha 2-adrenergic receptors by positron emission tomography.

Adrenergic beta-Antagonists

Neurotransmitter receptors in frontal cortex of schizophrenics.

Frontal cerebral cortex brain samples from schizophrenics and controls have been assayed for binding associated with muscarinic cholinergic, serotonin (5HT), gamma-aminobutyric acid (GABA), and beta-adrenergic receptors as well as for the activity of the GABA-synthesizing enzyme glutamic acid decarboxylase (GAD). Binding levels of tritium-LSD, presumably associated with postsynaptic 5HT receptors, were reduced 40% to 50% in samples from schizophrenics in three independent studies, whereas no other consistent alteration was observed in levels of binding associated with other receptors or in the activity of GAD. This change in receptor binding levels does not seem to be attributable to postmortem changes, to influence of drugs received by the patients, or to demographic features of the patient populations.

Adolescent

(+/-)-[3H]Epinephrine and (-)[3H]dihydroalprenolol binding to beta1- and beta2-noradrenergic receptors in brain, heart, and lung membranes.

(+/-)-[3H]Epinephrine binds to beta-receptors in calf cerebellar and rat lung membranes in the presence of 1.0 mM pyrocatechol and 1.0 microM phentolamine, with dissociation constants at 4 degrees C of 11 nM and 24 nM, respectively. (+/-)-[3H]Epinephrine associates to equilibrium within 20 min in both tissues, and over 50% of the binding is rapidly dissociable. Inhibition of binding by agonists and antagonists is highly stereoselective, and the structure-activity relationships of adrenergic agents in inhibiting (+/-)-[3H]epinephrine binding suggest an interaction with beta2 type noradrenergic receptors. (-)-Isoproterenol has an apparent Ki of 2 nM, (-)-epinephrine is 1.5 to 3 times weaker, and (-)-norepinephrine is 30 to 60 times weaker. Salbutamol and terbutaline, selective beta2-agonists, are potent inhibitors of binding, as are several nonspecific antagonists. Properties of the sites labeled by (+/-)-[3H]epinephrine in calf cerebellum and rat lung are closely similar. (-)-[3H]Dihydroalprenolol binding in calf cerebellum and rat lung also shows beta2 characteristics. Antagonists have similar potencies in inhibiting (-)-[3H]dihydroalprenolol and (+/-)-[3H]epinephrine binding in both tissues, but agonists are in general more potent inhibitors of (+/-)-[3H]epinephrine. Sodium and lithium selectively lower the affinity of (+/-)-[3H]epinephrine at its binding sites and the affinities of agonists, but not antagonists, at the (-)-[3H]dihydroalprenolol site. Specific (+/-)-[3H]epinephrine binding was not detectable in calf cortex and rat heart, where (-)-[3H]dihydroalprenolol binding suggests a beta1-receptor. A physiological significance of (+/-)-[3H]epinephrine binding is suggested by the strong correlation for agonists and antagonists between affinities in inhibiting binding, and in stimulating or inhibiting a beta-receptor-coupled adenylate cyclase in frog erythrocytes.

Alprenolol

Beta adrenergic receptor labeling in intact animals with 125I-hydroxybenzylpindolol.

After the intravenous administration to mice of 125I-hydroxybenzylpindolol (125I-HYP), a potent beta adrenergic antagonist, particulate bound radioactivity in brain, heart and lung is selectively associated with beta adrenergic receptor binding sites. The amount of total and bound radioactivity in these tissues is time dependent, reaching peak values at about 5 minutes after injection, and increases approximately linearly with increasing 125I-HYP doses. The lung has the highest levels of radioactivity as well as the highest proportion of bound to total radioactivity. The amount of specifically bound 125I-HYP is markedly reduced by simultaneously injecting a beta adrenergic bound 125I-HYP is markedly reduced by simultaneously injecting a beta adrenergic agonist or antagonist, although the total amount of radioactivity in the tissues is not affected. The beta antagonist (-)-propranolol reduces specific 125I-HYP binding 50% at doses of 0.01, 0.03 and 0.004 mg/kg in brain, heart and lung, respectively. Specific 125I-HYP binding is stereospecific in these tissues as (+)-propranolol is only 1 to 2% as effective as (-)-propranolol in reducing binding. The beta agonist (-)-isoproterenol has ID50 values in the range of 2 to 20 mg/kg, whereas the alpha adrenergic antagonist, phentolamine does not reduce 125I-HYP binding. Although some radioactivity is associated with particulate fractions from the liver, little, if any, specific binding of 125I-HYP to a beta adrenergic receptor is demonstrable. The characteristics of 125I-HYP binding in mouse heart, lung and brain are those expected for the recognition site of the beta adrenergic receptor and thus provide a method for labeling the beta adrenergic receptor in vivo.

Animals

Huntington's chorea. Changes in neurotransmitter receptors in the brain.

Neurotransmitter-receptor binding sites for apparent muscarinic cholinergic, beta-adrenergic, gamma-aminobutyric acid and serotonin receptors were measured in the caudate nucleus and frontal cerebral cortex from post-mortem brains of 16 patients with Huntington's chorea and 16 controls. In addition, the samples were assayed for the gamma-aminobutyric-acid-synthesizing enzyme, glutamic acid decarboxylase, and for the acetylcholine-synthesizing enzyme, choline acetyltransferase. In the caudate nucleus of choreic brain, both enzyme activities were markedly lower, with significant decreases in muscarinic cholinergic and serotonin receptor binding, whereas enzyme activities and receptor binding were unchanged in the cerebral cortex. By contrast, gamma-aminobutyric acid and beta-adrenergic receptor binding were not significantly different in choreic and control caudate nucleus or cortex, suggesting that, despite the loss of gamma-aminobutyric-acid-synthesizing ability in the corpus striatum, gamma-aminobuytric acid mimetic drugs might alleviate the movement disorders in Huntington's chorea.

Alprenolol