Biomedical subjects
N M Lee
Publications and source records attributed to N M Lee.
Non-opioid dynorphin binding site on secretory vesicles of a pituitary-derived cell line.
Accumulating evidence indicates that the endogenous opioid peptides dynorphinA-(1-17) and dynorphinA-(1-13) interact not only with opioid but also with yet poorly characterized non-opioid receptors. The latter have been implicated in a number of the effects of dynorphins including induction of ACTH release in sheep and in AtT 20 cells, a pituitary-derived mouse cell line. AtT 20 cells do not express opioid receptors and therefore are particularly suitable for search of non-opioid dynorphin receptors. We report here that 3H-dynorphinA-(1-13)-NH2 associates specifically with AtT 20 cells, apparently through an uptake process and a binding site. Within the cell, it binds preferentially to fractions containing secretory vesicles, with a Kd of about 100 nM. DynorphinA-(1-17), and several non-opioid fragments of dynorphin, including A-(2-17), A-(2-16) and A-(2-13), compete with 3H-dynorphinA-(1-13)-NH2 for that site with IC50s ranging from 200 nM to 2 microM. ACTH(1-39) also competes with 3H-dynorphinA-(1-13)-NH2 for the site with an IC50 of about 300 nM. DynorphinA-(2-17) at microM concentrations stimulates release of ACTH from the isolated vesicles. The results indicate the presence of a non-opioid dynorphin binding site on the secretory vesicle fractions of AtT20 cells that might be involved in ACTH release. The ability of ACTH itself to compete for the binding sites associated with the vesicles suggest that those sites may be involved in an autocrine loop.
Pregnancy augments nitric oxide-dependent dilator response to acetylcholine in the human uterine artery.
The influence of pregnancy on the dilator effects of acetylcholine in the isolated human uterine artery was investigated. Acetylcholine (0.1 nM to 0.1 microM) produced concentration- and endothelium-dependent relaxation of norepinephrine (3 microM)-induced contraction. The relaxation was greater in arteries from pregnant patients (P arteries) than from non-pregnant patients (NP arteries). The maximal relaxation was 53.5+/-3.4% (n=21) in P arteries and 23.5+/-2.5% (n=35) in NP arteries. In both P and NP arteries the cholinergic relaxation was increased in the presence of superoxide dismutase and greatly reduced in the presence of the nitric oxide synthase inhibitors, NG-mono-methyl L-arginine (L-NMMA) and L-nitro-arginine-methylester (L-NAME). The effect of these nitric oxide synthase inhibitors was reversed by L-arginine. We conclude that pregnancy enhances acetylcholine-induced nitric oxide synthesis and release in the human uterine artery.
Delta opioid receptor enhancement of mu opioid receptor-induced antinociception in spinal cord.
Although the mu selective agonist [D-Ala2-MePhe4-Gly-ol5]enkephalin (DAMGO) and the delta selective agonist [D-Pen2,D-Pen5]enkephalin (DPDPE) are both antinociceptive when administered directly into the spinal cord of mice, 50% of antinociceptive dose (AD50) of DAMGO is about 2 orders of magnitude lower than the AD50 of DPDPE. In contrast, the two ligands show similar affinities for their respective receptors in in vitro binding assays. One possible explanation for this discrepancy is that DPDPE antinociception in the spinal cord is mediated through not delta but mu receptors, for which it has an several hundred-fold lower affinity than DAMGO. In support of this, we found that DPDPE-mediated antinociception was blocked by the mu selective antagonist D-Phe-Cys-Tyr-D-Trp-Arg-Thr-Pen-Thr-NH2 (CTAP). The pA2 value of CTAP for DPDPE was virtually identical with that for DAMGO. However, because its action also was blocked by naltrindole, an antagonist selective for delta receptors, the latter must also play a role in antinociception. When DAMGO and DPDPE were administered i.t. together at ratios ranging from 1:200 to 1:500, the AD50 of DAMGO was lowered as much as 10-fold relative to its AD50 when given alone. Thus DPDPE had a potentiating effect on DAMGO, although the reverse was not observed. This potentiation was lost in animals made tolerant to systemic morphine. The loss of potentiation seemed to be caused by changes in the delta receptors, because a) the AD50 of DAMGO (i.t.) given alone to tolerant animals was virtually the same as for naive animals, whereas the AD50 of DPDPE given alone increased by 4-fold; and b) the AD50 of DPDPE given alone in the tolerant animal was increased only slightly by naltrindole, whereas CTAP was still a very potent antagonist. We conclude that DPDPE, a selective delta agonist, mediates antinociception in the spinal cord through mu receptors, consistent with results of recent studies of "knock-out" mice lacking mu receptors. At the same time, however, the delta agonist acting through delta receptors can potentiate the mu receptor-mediated antinociceptive action of either mu or delta agonists. This potentiating effect, like the synergistic effect observed between mu receptors at spinal and supraspinal sites, is lost during tolerance.
DynorphinA-(2-17) restores spinal/supraspinal morphine synergy in morphine-tolerant mice.
Morphine administered simultaneously to intracerebroventricular (i.c.v.) and intrathecal (i.t.) sites exhibits synergism, with the antinociceptive potency much greater than would be predicted from a simple addition of the potencies of the same dose administered to either site alone. This synergism was quantified in mice using both a fixed dose method, in which the morphine dose at one site was fixed while the AD50 (antinociceptive dose at 50% effectiveness) of morphine at the other site was determined; and a variable dose method, in which different doses of morphine were administered simultaneously to both sites at a fixed ratio, and the AD50 determined and compared to the AD50 at a single site alone. When animals were made tolerant to morphine by implantation of a 75-mg morphine pellet for 3 days, this synergism was eliminated, so that morphine administered simultaneously to i.c.v. and i.t. sites had an additive effect. However, administration of the peptide DynorphinA-(2-17) i.v. simultaneously to the test doses of morphine in morphine-tolerant animals resulted in a partial restoration of synergism. These results suggest that morphine-induced antinociception is highly dependent on an intact integrated central nervous system system and that the initial tolerance development is the result of a disruption of synergism between the central nervous system sites. Morphine tolerance results not from a reduced sensitivity to morphine at discrete central nervous system sites, but rather from a reduced synergistic interaction of morphine at spinal and supraspinal sites. In support of this conclusion, there was no tolerance observed in morphine-pelleted animals to morphine administered to i.c.v. or i.t. sites alone. DynorphinA-(2-17), a nonopioid peptide has previously been shown to enhance the antinociceptive potency of morphine in morphine-tolerant animals, appears to act by restoring this synergism.
Alteration of OBCAM conformation as a result of opioid receptor expression and opioid ligand treatment.
Several lines of evidence link the opioid binding cell adhesion molecule (OBCAM) to opioid function. When delta-opioid receptor cDNA (DOR-1) was expressed in CHO cells, OBCAM immunoreactivity (OBCAM-ir) was detected. Transfected cell lines which displayed high opioid binding also expressed high cell surface OBCAM-ir, while untransfected CHO and vector control cells did not. The positive control, neural cell adhesion molecule (NCAM), a protein with structural homology to OBCAM, displayed the same levels of immunofluorescence in transfected and nontransfected cell lines. Membranes from CHO cells transfected with and expressing a variety of muscarinic and dopamine receptors were tested for immunoreactivity. No significant OBCAM-ir was detected in any of these cell membranes. When anti-OBCAM peptide antibodies were used for immunoblots of CHO cells, untransfected, non-binding transfected, and high binding transfected cells revealed the same banding patterns with approximately equal intensity. These observations suggest that in untransfected cells OBCAM is either not present on the extracellular side of the CHO cell membrane or that it exists in an altered conformation which changes upon transfection with opioid receptors to allow recognition of the non-denatured protein by anti-OBCAM antibodies.
Cloning, sequencing and localization to chromosome 11 of a cDNA encoding a human opioid-binding cell adhesion molecule (OBCAM).
Oligodeoxyribonucleotide (oligo) primers derived from rat opioid-binding cell adhesion molecule (OBCAM)-encoding cDNA sequence were used to amplify a 403-bp fragment from a human brain cDNA library using the polymerase chain reaction (PCR). The fragment was cloned, sequenced and used as a hybridization probe to screen the library. lambda plaque clones were isolated which contained a 1.5-kb cDNA fragment, including a complete open reading frame (ORF) of 1038 bp. Sequence analysis of the ORF revealed 93% identity to the rat OBCAM cDNA at the nucleotide level, and the deduced amino-acid sequences shared 98% identity. Percentages of identity between human and bovine OBCAM ORFs were within 2% of these values. OBCAM was mapped to human chromosome 11 by hybridizing the probe with a somatic cell hybrid panel.
Isolation of a cDNA encoding a novel zinc-finger protein from neuroblastoma x glioma NG108-15 cells.
A subtraction cDNA library was constructed from control hybrid NG108-15 (mouse neuroblastoma x rat glioma) cells and NG108-15 cells which had been treated for 48 h with the delta-opioid agonist D-Ala2-D-Leu5 enkephalin (DADLE) to down-regulate the delta-opioid receptor on these cells. Among the clones isolated from this library was NGD16-4, a 2768-bp clone encoding a putative 64-kDa protein containing 14 tandemly repeated zinc fingers (Zf) with high homology to the Krüppel family of Zf proteins. NGD16-4 also contains a region homologous to the A element of the Krüppel Associated Box (KRAB) domain, a domain recently linked to transcriptional repression. Southern and Northern analyses indicate that NGD16-4 is derived from the mouse genome. Northern analysis also demonstrates that expression of NGD16-4 mRNA is much higher in several mouse neuroblastoma cell lines than in mouse brain or other tissues. Although the function of NGD16-4 is unclear, the expression pattern of NGD16-4 indicates a possible association with the processes of differentiation or transformation in the mouse.
An opioid binding protein is specifically down-regulated by chronic morphine treatment in dorsal root and trigeminal ganglia.
Despite the recent cloning of mu, delta and kappa opioid receptors, a role in opioid receptor function for an opioid binding cell adhesion molecule is supported by several lines of evidence, including inhibition of opioid binding by opioid binding cell adhesion molecule antibodies, down-regulation of opioid binding cell adhesion molecule by chronic opioid agonist treatment of cultured NG108-15 cells, and reduction of opioid binding in NG108-15 cells by transfection of opioid binding cell adhesion molecule antisense cDNA. In the present study, we report that chronic in vivo treatment of mice with morphine results in down-regulation of opioid binding cell adhesion molecule immunoreactivity in primary afferent neurons in dorsal root and trigeminal ganglia as well as their axons. This effect was blocked by the opioid antagonist naloxone. Down-regulation of opioid binding cell adhesion molecule immunoreactivity was not observed in other areas of the central nervous system. Taken together, the previous studies which demonstrated the role played by opioid receptors in regulating release of transmitters from primary afferent neurons and the present findings of a specific regulation of opioid binding cell adhesion molecule expression by chronic exposure to morphine, provides evidence from an in vivo perspective which advances the notion that opioid binding cell adhesion molecule plays a role in the action of opioids.
Dynorphin A modulates acute and chronic opioid effects.
A single dose of dynorphin A-(1-13) [dyn A(1-13)] is effective in suppressing the expression of opioid withdrawal and tolerance in morphine-dependent mice. In addition, this modulatory activity is retained by the corresponding non-opioid [des-Tyr1]-dynorphin A peptide [dynA(2-17)]. We have further investigated the non-opioid nature of this activity by comparing the efficacies of dyn A(1-13) and (2-17) under different experimental protocols with a variety of dosing regimens. The effect of dyn A(1-13) on withdrawal and tolerance expression was dose-dependent and could be enhanced by repeated dosing. Thus, the ED50 of naloxone to precipitate withdrawal jumping was increased 1.8-fold when morphine-dependent mice were treated with 4.2 mumol/kg dyn A(1-13) on the fourth day after pellet implantation and 2.4-fold on the sixth day with continued daily dyn A(1-13) treatment. The maximal effect was observed on day 6 when the ED50 of mice treated with 8.4 mumol/kg of dyn A(1-13) was increased nearly 6-fold over that of saline controls. Dyn A(2-17) proved to be nearly as effective as dyn A(1-13).
[Des-Tyr1]dynorphin A-(2-17) has naloxone-insensitive antinociceptive effect in the writhing assay.
The dynorphin family of peptides stands out among the opioids in that its members are not antinociceptive after central administration in the common antinociceptive assays. In addition, reports of spinal antinociception have been conflicting. We have tested the antinociceptive activity of i.v. dynorphin A-(1-13) in the writhing assay and have found it to be very potent, with an ED50 of 1.0 (0.99-1.02) mumol/kg. Remarkably, [des-tyr1]dyn A-(2-17) was equally active with an ED50 of 1.1 (0.99-1.20). This activity was also retained by several smaller, non-opioid dynorphin A fragments and was not affected by the presence of either 50 mumol/kg naloxone or 20 mumol/kg Nor-BNI. Further, ED50 values were not different in morphine-dependent mice. The peak effect of dyn A-(1-13) and A-(2-17) was observed 5 min after administration and the effect of dyn A-(1-13) or dyn A-(2-17) was still measurable 1 hr after i.v. administration with a 5- to 6-fold increase in ED50 at this time. The ED50 values after i.c.v. and i.t. administration of dyn A-(1-13) were similar to those reported previously. Dyn A(2-17) was also effective by these routes with ED50 values not significantly different from those of dyn A-(1-13). Both dyn A-(1-13) and A-(2-17) were also active when injected i.p., whereas ED50 values increased substantially after s.c. administration.(ABSTRACT TRUNCATED AT 250 WORDS)
Dynorphin A: a rectifying peptide.
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Opioids mobilize calcium from inositol 1,4,5-trisphosphate-sensitive stores in NG108-15 cells.
Opioids elicit an increase in the intracellular free Ca2+ concentration ([Ca2+]i) in neuroblastoma x glioma hybrid NG108-15 cells, which, depending upon growth conditions, results from either Ca2+ influx in differentiated cells or Ca2+ release from internal stores in undifferentiated cells (Jin et al., 1992). In this report we describe fura-2-based digital imaging studies that demonstrate that opioid-evoked Ca2+ release in these cells results from the activation of phospholipase C (PLC) and subsequent mobilization of the inositol 1,4,5-trisphosphate (IP3)-sensitive store. D-Ala2-D-Leu5-enkephalin (DA-DLE) evoked concentration-dependent increases in [Ca2+]i (EC50 approximately equal to 4 nM). The response was blocked by naloxone (1 microM). In single cells, sequential application of selective opioid agonists (10 nM) evoked responses of the rank order DADLE = D-Pen2, D-Pen5-enkephalin (DPDPE) > trans-(+/-) 3,4-dichloro-N-methyl-N-(2-[1- pyrrolidinyl]cyclohexyl) benzeneacetamide (U50488) > D-ala2, N-Me-Phe4, Gly5-ol-enkephalin (DAMGO), consistent with activation of a delta-opioid receptor. Forty percent (n = 198) of the cells responded to 100 nM DADLE with a net [Ca2+]i increase of 483 +/- 40 nM. Bradykinin (100 nM) elicited a response in 91% of the cells with a mean net amplitude of 707 +/- 36 nM. The DADLE-evoked responses were not blocked by removal of extracellular Ca2+; instead, they were abolished by treatment with 10 nM thapsigargin, an agent that depletes and prevents refilling of IP3-sensitive Ca2+ stores. A 1 microM concentration of U73122, an aminosteroid inhibitor of PLC, completely blocked the DADLE-evoked [Ca2+]i increase, while an inactive analog, U73433, was without effect. To explore the possible role of G-proteins in mediating opioid-induced [Ca2+]i increases in NG108-15 cells, we pretreated cells with pertussis or cholera toxin; pertussis toxin blocked the opioid-induced response while cholera toxin was without effect, consistent with a Gi- or Go-mediated effect. Activation of the opioid inhibitory pathway previously described for these cells appears to stimulate the phosphoinositide (PI) cascade as well. Including the PI cascade among the multiple second messenger systems modulated by opioids may be key to understanding the biochemical events that underlie acute and chronic opioid action.
Transfection of NG108-15 cells with antisense opioid-binding cell adhesion molecule cDNA alters opioid receptor-G-protein interaction.
We previously reported that transfection of antisense OBCAM (opioid-binding cell adhesion molecule) cDNA into NG108-15 neuroblastoma x glioma hybrid cells, which contain delta-opioid receptors, results in greatly reduced opioid binding (Ann, D. K., Hasegawa, J., Ko, J. L., Chen, S. T., Lee, N. M., and Loh, H. H. (1992) J. Biol. Chem. 267, 7921-7926. Here we report that these cells show altered coupling between opioid receptors and G-proteins. G-proteins were identified using cholera toxin (CTX)-induced ADP-ribosylation and antisera selective for Gi2 and Go alpha subunits. In the presence of delta-opioid agonists, CTX induced the incorporation of [32P]ADP-ribose into a 39-41-kDa protein with the same electrophoretic mobility as Gi2 and Go alpha subunits. This band, which was also a pertussis toxin (PTX) substrate, exhibited decreased CTX-induced ADP-ribosylation in membranes of cells treated chronically with D-Ala2-D-Leu5-enkephalin (DADLE). In cells transfected with antisense cDNA for OBCAM, labeling of this band was also decreased, compared with either sense-transfected or untransfected cells. DADLE inhibition of adenylyl cyclase and DADLE stimulation of GTPase were also greatly impaired in antisense cells, as well as GTP and GppNHp inhibition of basal and forskolin-stimulated adenylyl cyclase. These results provide further evidence for a role of OBCAM in opioid receptor function.
Opioid-induced inhibition of voltage-gated calcium channels parallels expression of omega-conotoxin-sensitive channel subtype during differentiation of NG108-15 cells.
Depolarization-induced increases in intracellular free calcium concentration ([Ca2+]i) were measured in single NG108-15 cells using indo-1 based microfluorimetry. In cells differentiated for 6 days in serum-free forskolin (5 microM) supplemented media, application of micromolar concentrations of [D-Ala2-D-Leu5]enkephalin (DADLE) inhibited Ca2+ influx mediated by voltage-gated Ca2+ channels. Inhibition of 50 mM K(+)-induced Ca2+ influx by DADLE was concentration-dependent over the range of 0.1 to 10 microM and blocked by 100 microM naloxone. Differentiation increased the amplitude of depolarization-induced [Ca2+]i transients from 78 +/- 21 nM in undifferentiated cells to 1,282 +/- 318 nM after 6 days. One microM nitrendipine inhibited Ca2+ influx by at least 65% at all stages of differentiation, while sensitivity to omega-conotoxin GVIa (omega-CgTx) did not appear until day 3. omega-CgTx inhibited a dihydropyridine-sensitive Ca2+ channel. DADLE inhibition of Ca2+ channels did not appear until 3 days of differentiation. Thus, opioid inhibition of depolarization-induced Ca2+ influx paralleled the expression of omega-CgTx sensitive voltage-gated Ca2+ channels.
Effects of opioids on proliferation of mature and immature immune cells.
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Genetic mapping of opioid binding protein gene(s) to mouse chromosome 9.
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Suppression by dynorphin A and [des-Tyr1]dynorphin A peptides of the expression of opiate withdrawal and tolerance in morphine-dependent mice.
Previously, we demonstrated that the expression of opiate withdrawal and antinociceptive tolerance can be suppressed by dynorphin (dyn) A-(1-13) in morphine-dependent mice. In this study, it was shown that the normal, endogenous dyn, dyn A-(1-17) also possessed this suppressive property. While using the nonopioid dyn analog, [des-Tyr1]dyn A [dyn A-(2-17)] as a negative control, we discovered unexpectedly that this peptide fragment also suppressed naloxone-induced withdrawal and the expression of morphine tolerance in morphine-dependent mice. Thus, an extensive structure activity relationship was studied using 11 peptide fragments. It was determined that the amino acid sequence of dyn A was required for the suppressive activity because dyn B and alpha-neoendorphin both failed to suppress naloxone-precipitated withdrawal jumping. Of the [des-Tyr1]dyn fragments, the minimal amino acid sequence required to suppress naloxone-induced withdrawal was determined to be dyn A-(2-8), containing the sequence G-G-F-L-R-R-I.