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B L Roth

Publications and source records attributed to B L Roth.

At least 73 records · Page 4Linked to original sources

Identification of receptor domains that modify ligand binding to 5-hydroxytryptamine2 and 5-hydroxytryptamine1c serotonin receptors.

Serotonin [5-hydroxytryptamine (5-HT)] receptors are distinguished pharmacologically by their characteristic affinities for agonists and antagonists. Two serotonin receptors, the 5-HT2 and 5-HT1c, share a number of pharmacologic and structural properties while differing in their affinities for certain agonists and antagonists. To identify regions of the 5-HT2 and 5-HT1c receptors important for specifying their unique pharmacology, we constructed six chimeric 5-HT2/5-HT1c receptors in which domains of each receptor were exchanged. The abilities of several drugs to inhibit [3H]mesulergine bound to the chimeric and parent receptors transiently expressed in COS-7 cells were then examined. For spiperone and haloperidol (both butyrophenones), chimeras that exchanged transmembrane (TM) domains I and II or TMs I-III had the greatest effects on binding affinity. The binding affinity of cinanserin (a cinnamanilide) was significantly changed in all the chimeras studied. In contrast, the binding of ketanserin (a 4-fluorobenzoylpiperidine) was strongly influenced by chimeras that exchanged TMs I-III (but not I and II) and by chimeras that exchanged intracellular loop 3 to TM VII. 5-HT binding affinity was greatly altered for chimeras that exchanged domains of intracellular loop 3 to TM VII, with minor effects being noted for chimeras that exchanged TMs I and II and I-III. The affinities of the nonselective drugs mesulergine, mianserin, and m-chlorophenylpiperazine were relatively unaffected when domains of the 5-HT2 and 5-HT1c receptors were exchanged. Taken together, these results imply that structurally diverse 5-HT2 antagonists utilize distinct regions of the 5-HT2 receptor for high affinity binding.

Base Sequence↗

Chronic mianserin treatment decreases 5-HT2 receptor binding without altering 5-HT2 receptor mRNA levels.

Rats were injected with 15 mg/kg (i.p.) mianserin or vehicle (saline) for 4, 10 or 21 days and 5-HT2 receptor binding and mRNA levels measured. Treatment with mianserin induced a substantial decrease in 5-HT2 radioligand binding (44-59% decrease; P less than 0.05 vs. control). No changes in the amount of 5-HT2 or, as a control, beta-actin mRNAs were found (P greater than 0.05 vs. control). These results indicate that mianserin decreases 5-HT2 radioligand binding without altering steady-state 5-HT2 mRNA levels.

Animals↗

Developmental regulation of 5-HT2 and 5-HT1c mRNA and receptor levels.

We investigated the regulation of 5-HT2 and 5-HT1c receptors and their corresponding mRNAs during rat brain development. This study showed that 5-HT2 and 5-HT1c receptors increased markedly during ontogeny. 5-HT2 receptors, measured with [3H]ketanserin or [125I]lysergic acid diethylamide binding, increased 8-fold between embryonic day 17 (E17) and postnatal day 13 (P13). 5-HT2 receptor mRNA levels, quantified by probing Northern blots of total RNA with a synthetic oligonucleotide cDNA probe, multiplied 13-fold between E17 and P5. The developmental pattern of 5-HT2 receptor and mRNA expression appeared to correlate with the serotonergic hyperinnervation of the cortex which occurs between P2 and P17. 5-HT1c receptors, measured with [125I]lysergic acid diethylamide under site-specific conditions, increased 2-fold between E17 and P27, 5-HT1c mRNA increased 5-fold between E17 and P27. Interestingly, the developmentally induced variations in 5-HT1c receptors did not precisely correlate with mRNA alterations. Further study of the factors responsible for these alterations could help to explain the molecular and biochemical mechanisms responsible for modulating receptor levels in vivo.

Animals↗

A structure-affinity study of the binding of 4-substituted analogues of 1-(2,5-dimethoxyphenyl)-2-aminopropane at 5-HT2 serotonin receptors.

With [3H]ketanserin as the radioligand, structure-affinity relationships (SAFIRs) for binding at central 5-HT2 serotonin receptors (rat frontal cortex) were examined for a series of 27 4-substituted 1-(2,5-dimethoxyphenyl)-2-aminopropane derivatives (2,5-DMAs). The affinity (Ki values) ranged over a span of several orders of magnitude. It appears that the lipophilic character of the 4-position substituent plays a major role in determining the affinity of these agents for 5-HT2 receptors, 2,5-DMAs with polar 4-substituents (e.g. OH, NH2, COOH) display a very low affinity (Ki greater than 25,000 nM) for these receptors, whereas those with lipophilic functions display a significantly higher affinity. The results of these studies prompted us to synthesize and evaluate examples of newer lipophilic derivatives and several of these (e.g. n-hexyl, n-octyl) bind with very high (Ki values = 2.5 and 3 nM, respectively) affinities at central 5-HT2 sites. Although, 2,5-DMAs are generally considered to be 5-HT2 agonists, preliminary studies with isolated rat thoracic aorta suggest that some of the more lipophilic derivatives (e.g. the n-hexyl and n-octyl derivatives) are 5-HT2 antagonists.

Amphetamines↗

Cross-linking of [125I]beta-endorphin to mu-opioid receptors during development.

Radioiodinated human beta-endorphin was cross-linked to opioid receptors from rat brain membranes using the bifunctional reagents bis-[2-(succinimidooxycarbonyloxy)ethyl] sulfone (BSCOES) and disuccinimidyl suberate (DSS). Major radiolabeled bands migrated with Mr values of 65,000, 55,000 and 33,000, however the presence of the 55 kDa band was variable. The 65 kDa band was characterized as the mu-receptor: the binding of [125I]beta-endorphin to this band was displaced by mu-selective ligands and blocked by alkylation of the receptor by mu-specific, but not delta-specific alkylating agents. The cross-linked receptor underwent alterations in mol. wt. during development. Early in development, embryonic day 18 and postnatal day 1, the [125I]beta-endorphin-labeled material migrated as a single band of mol. wt. 55 kDa. By day 21 postnatally the higher mol. wt. band of 65 kDa was present, as was material of 53, 47 and 43 kDa. Although the protein labeled early in development migrated with a mol. wt. of 55 kDa similar to the delta-receptor isolated from NG108-15 neuroblastoma-glioma cells, competition studies suggest this protein is not the delta-receptor. The 65 kDa band, tentatively identified as the mu-receptor, was present in adults but not detected in neonates, despite competition binding data indicating the presence of mu-sites. The results suggest that the 55 kDa band found in the 1-day-old neonate may be an immature form of the mu-opioid receptor that undergoes posttranslational modification, perhaps glycosylation, during development.

Alkylation↗

Immunohistochemical distribution of beta-protein kinase C in rat hippocampus determined with an antibody against a synthetic peptide sequence.

An antibody directed against a synthetic peptide sequence specific for the beta-subtype of protein kinase C (PKC) was used to determine the distribution of beta-PKC in rat hippocampus by immunocytochemistry. PKC was distributed primarily in the stratum oriens and radiatum of the CA1 region. Positive staining cell bodies were only observed after colchicine treatment in pyramidal cells (CA2-CA4) and granule cells of the dentate gyrus. The discrete localization of various subtypes of PKC should provide clues to their functions.

Amino Acid Sequence↗

Rat brain protein kinase C: purification, antibody production, and quantification in discrete regions of hippocampus.

Protein kinase C (PKC), a calcium- and phospholipid-dependent kinase, is highly enriched in rat brain, where it may function in signal transduction processes. We purified rat brain PKC to homogeneity by a three-column procedure of diethylaminoethyl-cellulose, phenyl-Sepharose, and protamine-agarose with a yield of 16% and a final specific activity of 9,600 pmol of [3H]phorbol-12,13-dibutyrate bound/mg of protein. The pure protein consisted of a doublet of 80 and 78 kilodaltons. Rabbit antibodies prepared against a beta-type PKC synthetic peptide sequence (RAKIGQGTKAPEEKTANTISK) showed high specificity and sensitivity for PKC and recognized only the 78-kilodalton form of PKC. Micropunches (300 microns in diameter) of rat hippocampal subregions were solubilized in sodium dodecyl sulfate (SDS) sample buffer, electrophoresed on SDS-10% polyacrylamide gels, and transferred to nitrocellulose. PKC was visualized by 125I-protein A autoradiography and quantified by densitometry. The highest concentrations of PKC were found in the CA1 pyramidal cell layer (0.43 +/- 0.04 OD), with the lowest amounts in the CA3 and CA4 pyramidal cell layers (0.11 +/- 0.02 and 0.085 +/- 0.006 OD, respectively). These results demonstrate a simple way of preparing antibodies against domains of PKC. We also describe a procedure for quantifying the relative amounts of PKC in discrete brain regions.

Animals↗

Norepinephrine-induced phosphorylation of a 25 kd phosphoprotein in rat aorta is altered in intraperitoneal sepsis.

An attenuation of the contractile response to norepinephrine (NE) has been previously demonstrated in rat aorta during intraperitoneal sepsis and endotoxemia. In this study, we determined whether NE-induced protein phosphorylation is altered in septic rat aorta as compared to control rat aorta. We found that the NE-induced phosphorylation of a 25 kd phosphoprotein was decreased. NE increased phosphorylation of the 25 kd band by 54% (P less than .01) in the control aorta but only 12% (not significant) in the septic aorta. Pyrophosphate gel purification of phosphorylated myosin showed that this 25 kd band was not related to the myosin-phosphorylated (P) light chain. Two-dimensional polyacrylamide gel electrophoresis analysis revealed that this 25 kd band represents two proteins with distinct isoelectric points of 6.5 and 6.2. These results further document that intrinsic alterations occur in the NE-mediated signal transduction system in rat aorta during sepsis and that such alterations could contribute to depressed aortic contractility.

Animals↗

Modification of protein kinase C (PKC) activity and diacylglycerol (DAG) accumulation in hepatocytes in continuous endotoxemia.

On the basis of our work, the status of PKC-mediated signal transduction in hepatocytes in chronic endotoxemia can be summarized as follows: 1. Vasopressin (10(-8) M)-induced DAG accumulation is delayed and reduced by 50%, as compared with the response of cells of saline-infused rats. 2. Under basal conditions, total PKC activity (cytosol + pellet) is elevated due to a tendency for higher cytosolic fractional activity. 3. Both TPA- and hormonally-induced (in response to VP and PE) translocation are impaired. 4. Quantitative receptor autoradiography reveals a selective decrease in [3H-PDBu] binding sites in hepatic membranes. We conclude that modulation in endotoxemia of the DAG signal elicited by VP stimulation in hepatocytes could lead to altered transmembrane control of PKC-mediated protein phosphorylation, thereby contributing to the mechanism of impairments in the regulation of cellular metabolism.

Animals↗

Alterations in bidirectional transmembrane calcium flux occur without changes in protein kinase C levels in rat aorta during sepsis.

A depression in aortic contractility has been previously demonstrated in rat intraperitoneal sepsis and during endotoxemia. In this study, we determined whether the mobilization of extracellular calcium (using 45Ca) and the release of intracellular calcium are altered in septic rat aorta when compared to sham-operated controls. The concentration of protein kinase C was also determined by using [3H] phorbol-12,13-dibutyrate (PDBu). We found that calcium influx was unaltered under basal conditions but that the ability of norepinephrine (NE) to augment influx was significantly depressed (P less than .05; [control vs. septic, 572 +/- 54 [SE] vs. 428 +/- 30 mumol Ca2+/kg dry wt. aorta]). Calcium influx stimulated by high K+ was unchanged in aortae between control and septic animals. In the presence of NE, calcium efflux (an indirect measurement of intracellular calcium release) was significantly diminished (P less than .001) in aortae from septic rats. The concentration of aortic protein kinase C as assessed by PDBu binding sites was unaltered in septic rats when compared with controls. In conclusion, we found that during sepsis alpha 1-adrenergic receptor activation of both calcium influx and efflux by NE is decreased; these alterations could be related to the depressed aortic contractility observed in sepsis.

Animals↗

Alterations in rat aortic alpha 1-adrenoceptors and alpha 1-adrenergic stimulated phosphoinositide hydrolysis in intraperitoneal sepsis.

We investigated the alterations of rat aortic alpha 1-adrenoceptors and alpha 1-adrenergic stimulated phosphoinositide (PI) metabolism in intraperitoneal sepsis. An analysis of [125I]-hydroxyethylaminotetralone (HEAT) binding to alpha 1-adrenoceptors on rat aortic membranes revealed decreased numbers of receptors without changes in affinity. The maximum number of binding sites decreased from 349 +/- 35 fmol/mg to 146 +/- 16 fmol/mg (P less than 0.05 vs. control). PI metabolism was similarly attenuated in aortae from septic rats. The norepinephrine-stimulated hydrolysis of [32P]-phosphatidylinositol-4,5-bisphosphate was significantly decreased in aortae from septic rats as was the alpha 1-adrenoceptor stimulated accumulation of [3H]-inositol monophosphate. Finally, the basal labeling of [32P]-phosphatidylinositol-4,5-bisphosphate but not of [32P]-phosphatidylinositol or [32P]-phosphatidic acid was significantly diminished. These results imply that signal transduction induced by alpha 1-adrenoceptor agonists in rat aorta is significantly altered in intraperitoneal sepsis. These findings may help define the mechanisms of depressed aortic contractility in models of sepsis and endotoxic shock.

Animals↗

Effects of a phorbol ester on rat aortic contraction and calcium influx in the presence and absence of BAY k 8644.

Phorbol esters like phorbol-12,13-dibutyrate (PDB) exert potent contractile effects on rat aorta. In the present study, we determined whether phorbol esters alter contraction by augmenting calcium influx through calcium channels. Isometric tensions and calcium influx (using 45Ca) were measured in rat aortic rings exposed to PDB in the presence and absence of BAY k 8644, a calcium channel agonist. We found that PDB alone caused significant increases in isometric tension. The addition of 100 nM BAY k 8644 enhanced the PDB-induced rat aortic contraction which was inhibited as well as reversed by the calcium channel antagonist, nitrendipine. In the presence of PDB alone, calcium influx was significantly increased only after an extended time (30 min) of isometric contraction. In the presence of BAY k 8644, however, PDB caused a significant increase in calcium influx during shorter periods (10 min) of isometric contraction. We also found that the biologically inactive phorbol, 4-alpha-phorbol, did not potentiate the effects of BAY k 8644 on either contraction or calcium influx. These results indicate that PDB may induce rat aortic contraction via activation of protein kinase C which in the presence of a calcium channel agonist can potentiate the mobilization of calcium through nitrendipine-sensitive calcium channels.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Multiple mechanisms of serotonergic signal transduction.

In this article we review serotonergic signal transduction mechanisms in the central and peripheral nervous systems and in a variety of target organs. The various classes of pharmacologically defined serotonergic receptors are coupled to three major effector systems: (1) adenylate cyclase; (2) phospholipase C mediated phosphoinositide (PI) hydrolysis and (3) ion channels (K+ and Ca++). Long term occupancy of serotonergic receptors also appears to induce alterations in mRNA and protein synthesis. For all three types of signal transduction there is evidence accumulating which suggests the involvement of guanine nucleotide regulatory proteins. Recent findings suggest that the distinct types of pharmacologically defined serotonergic receptors (5HT1A, 5HT1B, 5HT1c, 5HT2) may be coupled to one or more signal transduction systems. Thus, 5HT1 receptors may both activate and inhibit adenylate cyclase and increase K+-ion conductance in the hippocampus. 5HT2 receptors which activate PI hydrolysis in the brain, both open voltage-gated calcium channels and activate PI metabolism in certain smooth muscle preparations. Thus, each class of serotonergic receptor may be linked to one or more distinct biochemical transduction mechanisms. The possibility is raised that selective agonists and antagonists might be developed which have specific effects on a particular receptor-linked effector system.

Adenylyl Cyclases↗

Modulation of phosphatidylinositol-4,5-bisphosphate hydrolysis in rat aorta by guanine nucleotides, calcium and magnesium.

Rat aortic smooth muscle homogenates and membrane preparations contain a phospholipase C which hydrolyzes phosphatidylinositol 4,5-biphosphate (PIP2). We discovered that guanyl-5'yl-imidodiphosphate (Gpp(NH)p) activated the hydrolysis of exogenous PIP2 but not of phosphatidylinositol (PI) in rat aortic membranes. Further, maximal Gpp(NH)p-dependent hydrolysis was dependent on physiological levels of calcium. Also, magnesium inhibited PIP2 hydrolysis and catalyzed the dephosphorylation of PIP2 to phosphatidylinositol-4-phosphate (PIP). The results imply that PIP2 is the primary substrate of the nucleotide-regulated phospholipase C in rat aorta and that calcium and magnesium are physiological regulators of this activity.

Animals↗

Prostaglandins activate phosphoinositide metabolism in rat aorta.

The ability of the five prostaglandins to activate phosphoinositide (PI) metabolism and to induce contraction was studied in rat aorta. All prostaglandins (PG) tested (B2, D2, E2, F1 alpha and F2 alpha) stimulated PI hydrolysis in the range of 0.01-1,000 microM (EC50 s from 0.9 to 47 microM) and elicited contractions in the range of 0.1-100 microM (EC50 s from 0.3 to 22.1 microM). The rank order potency was PGD2 greater than F2 alpha greater than F1 alpha greater than E2 greater than B2 for PI hydrolysis and PGB2 greater than F2 alpha greater than D2 greater than E2 greater than F1 alpha for contraction. The activation of PI hydrolysis by the various prostaglandins was greater than or equal to the effect of 5-hydroxytryptamine, norepinephrine, angiotensin II and [Arg8]vasopressin. The PI hydrolytic activity of PGD2, E2 and F2 alpha correlated with their ability to induce contraction. The results with PGB2 and F1 alpha showed, however, that activation of PI hydrolysis per se is not always a sufficient or necessary condition for rat aortic contraction.

Animals↗