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V J Hruby

Publications and source records attributed to V J Hruby.

At least 199 records · Page 11Linked to original sources

Conformational and topographical considerations in the design of biologically active peptides.

An outline of the basic considerations that are under development for the rational design of biologically active peptides and peptidomimetics is given. The necessary interplay of biophysical, chemical, and biological considerations is emphasized. The importance of properly designed biological assays to provide chemical information analogous to that from biophysical studies is discussed. The development of asymmetric synthesis in conjunction with conformational considerations for the preparation of specialized amino acids and amino acid mimetics is a critical aspect of the approach. The overall approach is illustrated with three examples from our laboratory: (1) the redesign of somatostatin to a highly potent and selective mu-opioid receptor antagonist using conformational and topographical considerations in design and for obtaining insights into the pharmacophor; (2) the use of topographical considerations for obtaining oxytocin antagonists; and (3) the application of designer amino acids prepared by asymmetric synthesis to obtain insight into the topographical requirements at delta-opioid receptors.

Amino Acid Sequence↗

Characterization of linear and cyclic glucagon analogs by fast atom bombardment mass spectrometry.

Fast atom bombardment mass spectral mapping of endoproteinase Asp-N digest mixtures is used for characterization of new synthetic linear and cyclic glucagon analogs. The results allow rapid identification of sequence modifications in linear glucagon analogs. For the cyclic compounds, the technique allows confirmation of the presence and position of the cyclic amide bond, as well as verification of the sequence of the modified glucagon analogs. The specificity of the Asp-N enables differentiation of isometric glucagon analogs which differ only in the position of the cyclic amide bond. Important information concerning the purity of the synthetic analogs is also available.

Amino Acid Sequence↗

New glucagon analogues with conformational restrictions and altered amphiphilicity: effects on binding, adenylate cyclase and glycogenolytic activities.

In an effort to obtain highly potent glucagon antagonists, we have investigated glucagon (1) structure-function relationships utilizing the following design principles: (1) structural changes known to lead to partial agonist activities; (2) conformational restrictions; (3) changes in the conformational probabilities of the primary sequence; and (4) increased amphiphilicity. In this report we present the total synthesis, purification, receptor binding, adenylate cyclase activity, in vivo glycogenolytic activity and CD spectrum of the following four glucagon analogues: [Ahx17,18]glucagon (2), [D-Phe4,Tyr5, 3,5-diiodo-Tyr10,Arg12,Lys17,18,Glu21]glucagon (3), [Asp9,Lys12,Lys17,18,Glu21]glucagon 4, and [Glu15,Lys17,18]glucagon 5. Compound 2 binds exclusively to the high affinity receptor and compound 3 was a highly potent antagonist with respect to adenylate cyclase activity. Analog 4 showed distinct biphasic binding (IC50 5.6 nM and 630 nM), with only the low affinity binding leading to adenylate cyclase activity. Furthermore in analogue 5 receptor binding and adenylate cyclase activity were dissociated by a factor of 5. The results are consistent with a multistep binding mechanism in which glucagon interacts first nonspecifically with the anisotropic interphase of the cell membrane, followed by a conformational transition which occurs in the sequences 10-14 and 15-18 when the membrane bound peptide binds to its receptor.

Adenylyl Cyclases↗

Syntheses, opioid binding affinities, and potencies of dynorphin A analogues substituted in positions, 1, 6, 7, 8 and 10.

Structural, stereochemical, stereoelectronic and conformational requirements for biological activity of dynorphin A1-11-NH2 analogues at opioid receptors were explored by substitution of Tyr1, Arg6, Arg7, Ile8 and Pro10 with other amino acid residues. Interestingly, substitution of Tyr1 with N alpha-Ac-Tyr1, D-Tyr1, Phe1 or p-BrPhe1 led to analogues that were quite potent at kappa opioid receptors, and additional substitution of Ile8 with D-Ala8 and/or Pro10 with D-Pro10 retained high potency in brain binding assay: [N alpha-Ac-Tyr1]- (1), [D-Tyr1]-(2) [Phe1]- (3), [Phe1,D-Ala8]- (5), [-BrPhe1, D-Ala8]- (6), [Phe1, D-Pro10]- (7) and [Phe1,D-Ala8, D-Pro10]- Dyn A1-11-NH2 (8) had IC50 (nM) binding affinities of 13.2, 18.6, 1.64, 1.26, 1.84, 2.44 and 1.62 nM, respectively. The D-Phe1 analogue 4, however, was only weakly active (610 nM). All of the analogues except 4 were modestly selective for kappa vs. mu guinea pig brain opioid receptor (11- to 88-fold) and quite selective for kappa vs. delta receptors (65-576). However, all of the analogues appeared to have very low or essentially no activity in the guinea pig ileum and mouse vas deference functional bioassays, and one analogue, 5, appeared to have weak antagonist activities. On the other hand, if constrained amino acids such as beta-methylphenylalanine or 1,2,3,4-tetrahydroisoquinoline carboxylic acid, and hydroxyproline were placed in the 1 position, inactive analogues or analogues with greatly reduced potency and biological activity were obtained (compounds 12-14). It had previously been suggested that the Arg6 and Arg7 residues were critical for biological activity.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Synthetic linear and cyclic glucagon antagonists.

The synthesis and biological activities of seven new glucagon analogues are reported. The design of compounds 2-5 is based on potent antagonists recently reported from this laboratory, where we have focused on modifications in the N-terminal region. In this report we have concentrated specifically on modifications to histidine-1. In addition we have prepared two cyclic compounds 7 and 8, related to a linear in vivo antagonist [Glu9]glucagon, reported by Merrifield (Unson et al. (1987) Proc. Natl. Acad. Sci. USA 84, 4083-4087). The N-terminal modifications involved substitution of His1 by the unnatural conformationally constrained residue (S)-5,6,7,8-tetrahydro-5-oxoimidazo(1,5-c)pyrimidine-7-carboxylic acid (Toc), desaminohistidine (dHis) and 3-(4-nitrobenzyl)histidine. The structures of the new compounds are as follows. [Toc1,D-Phe4,Tyr5,Arg12,Lys17,18,Glu21]glucagon (2); [Toc1,D-Phe4,Tyr5,Arg12,Lys17,18,Glu21]glucagon amide (3); [3-(4-nitrobenzyl)His1,D-Phe4,Tyr5,Arg12,Lys17,18,G lu21]glucagon (4); [dHis1,D-Phe4,Tyr5,Arg12,Lys17,18,Glu21]glucagon (5); [dHis1,Glu9]glucagon (6); (desHis1)[Glu9,Lys12]glucagon amide (7); (desHis1)-[Glu9,Lys12,Asp15]glucagon amide (8). The binding potencies of the linear analogues, as expressed a percentage of glucagon binding, are 2.6 (2), 0.13 (3), 0.8 (4), 0.8 (5), 2.2 (6). Both cyclic analogues 7 and 8 show biphasic binding curves. The IC50 values for 7 at the high and low affinity sites are 1.5 and 167 nM, respectively (IC50 of glucagon = 1.3 nM). The IC50 values for 8 at the high and low affinity sites are 4.7 and 3451 nM, respectively. The cyclic analogues are characterized by fast atom bombardment mass spectrometry of endoproteinase ASP-N digests. The specificity of the enzyme used in these studies enables differentiation of isomers of the cyclic glucagon analogues which differ only in the position of cyclic amide bond. Analogues 2, 3 and 5-8 are glucagon receptor antagonists with respect to the glucagon receptor coupled to the adenylate cyclase (AC) system. Analogue 4 is a partial agonist (5.7% compared to glucagon) of AC. Introduction of unusual amino acids which do not contain a primary alpha-amino group such as Toc at the N-terminus is expected to increase in vivo metabolic stability by protecting against degradation by aminopeptidases.

Amino Acid Sequence↗

Solution conformations of the peptide backbone for DPDPE and its beta-MePhe4-substituted analogs.

The solution structures of DPDPE, a conformationally restricted pentapeptide with the sequence H-Tyr1-D-Pen2-Gly3-Phe4-D-Pen5-OH, and its four beta-MePhe4-substituted analogs were examined by a combined approach including the NMR measurements in DMSO and water as well as independent energy calculations. It was concluded that several low energy conformers of DPDPE backbone satisfy the NMR data obtained in this study as well as in previous studies by other authors. These possible solution conformers of DPDPE in both DMSO and water share virtually the same type of cyclic backbone structure, with the Gly3 residue in a conformation close to a gamma-turn, and the Phe4 residue in a conformation close to alpha-helical torsion angles. They differ in the space arrangements of the flexible Tyr1 moiety. The solution structures of the beta-MePhe4-substituted analogs of DPDPE are interesting. For analogs with an S-configuration at the C alpha atom in the Phe4 residue, the cyclic backbone conformations resemble those of DPDPE itself, whereas for analogs with an R-configuration at the C alpha atom, the backbone conformation is somewhat different. This observation is in line with the high biological potencies and selectivities displayed by the former compounds but not by the latter ones. It was noted also that as far as the peptide backbone conformers are concerned, some of the possible DPDPE conformers in water are similar to the previously suggested model for the delta-receptor-bound conformation of DPDPE, becoming virtually identical to this conformation by rotating the side chains of the Tyr1 and the Phe4 residues.

Amino Acid Sequence↗

Modulation of morphine antinociception by swim-stress in the mouse: involvement of supraspinal opioid delta-2 receptors.

The present study evaluated the effect of a brief exposure of mice to cold-water swim-stress (CWSS) on the antinociceptive potency of i.c.v. given morphine. No significant antinociceptive response could be demonstrated in the warm-water tail-flick test, 10 min after a 30-sec exposure of mice to water at 5 degrees C. However, the i.c.v. morphine dose-response curve in mice exposed to CWSS was displaced significantly to the left when compared to that obtained in control (i.e., non-CWSS-exposed) mice. Although coadministration of the delta antagonist, N,N-diallyl-Tyr-Aib-Aib-Phe-Leu-OH 1 (ICI 174,864), with i.c.v. morphine did not produce antagonism of the antinociceptive action of this mu opiate, the leftward displacement of the i.c.v. morphine dose-response curve seen in CWSS-exposed mice was blocked in ICI 174,864-treated mice suggesting involvement of opioid delta receptors in the modulatory effect. Pretreatment of mice with the delta-1 antagonist, [D-Ala2, Leu5, Cys6] enkephalin, did not antagonize the antinociception of morphine and further did not antagonize the leftward displacement produced by exposure to CWSS. Pretreatment of mice with the delta-2 antagonist, 5'-isothiocyanate, also did not antagonize the antinociceptive effects of morphine but blocked the leftward displacement in the morphine dose-response curve associated with CWSS, suggesting involvement of an opioid delta-2 receptor in this effect. Pretreatment of mice with the mu antagonist, beta-funaltrexamine, produced a significant antagonism of the morphine antinociceptive effect as seen by a rightward displacement of the morphine dose-effect curve.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Assessment of an in vitro blood-brain barrier model using several [Met5]enkephalin opioid analogs.

Confluent monolayers of primary and continuous passaged cultures of bovine brain microvessel endothelial cells (BMEC) have been suggested to model the blood-brain barrier (BBB). Increased lipophilicity has been previously suggested to increase BBB penetration. The intent of this study was to examine the effect that structural modifications of the [Met5]enkephalin analog DPDPE had on lipophilicity and passage across the BMEC. The BMEC consisted of a monolayer of confluent primary BMEC grown on polycarbonate (10 microns) filters. Permeability coefficients were calculated on the basis of the diffusion of peptides across the BMEC in a Side-Bi-Side diffusion chamber. Lipophilicity of the peptides examined was determined by using reversed-phase HPLC and calculating the capacity factor (k). Diffusion across the BMEC (for all peptides examined) was linear from 15 to 120 min; therefore, these time points were used to calculate permeability coefficients. Permeability coefficients ranged from 14.34 to 92.00 cm/min (x 10(-4), with [rho-ClPhe4,4']biphalin the highest. Analysis of variance coupled with the Newman-Keuls test showed significantly greater (P < .01) passage of select peptide analogs across the BMEC, including [rho-ClPhe4,4']biphalin, [rho-ClPhe4]DPDPE and reduced DPDPE. Interestingly, upon passage across the confluent monolayer, reduced DPDPE was converted to cyclized DPDPE. Calculated HPLC capacity factors ranged from 3.82 to 12.50. The most lipophilic peptide (highest) examined was acetylated Phe0-DPDPE. Analysis of the regression line of permeability coefficients plotted against capacity factors yielded a correlation coefficient of 0.745 (P < .01). The data provided in this study offer strong evidence that increasing peptide lipophilicity enhances passage across the BMEC.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Evidence for a single functional opioid delta receptor subtype in the mouse isolated vas deferens.

The identification of opioid delta receptor subtypes in mouse brain led to the investigation of the nature of the opioid delta receptors in the mouse isolated vas deferens in vitro. Noncumulative concentration-effect curves were constructed for DPDPE (delta 1 agonist) and [D-Ala2, Glu4]deltorphin (delta 2 agonist) in control tissues, or in tissues which had been incubated with either [D-Ala2, Leu5, Cys6] enkephalin (DALCE) (noncompetitive delta 1 antagonist) or 5'-naltrindole isothiocyanate (5'-NTII) (noncompetitive delta 2 antagonist). Incubation of the tissues with DALCE, under either oxygenated or nonoxygenated conditions, did not alter the concentration-effect curves for either agonist. In contrast, incubation of the tissues with 5'-NTII resulted in a significant rightward displacement of the concentration-effect curves of both DPDPE and [D-Ala2, Glu4] deltorphin. Additionally, naltriben, a selective and competitive delta 2 antagonist, showed no significant difference in its ability to antagonize a fixed, submaximal concentration of either DPDPE or [D-Ala2, Glu4]deltorphin. Furthermore, there was no significant difference in the affinity of naloxone (i.e., pA2) at the receptor(s) acted upon by either DPDPE or [D-Ala2, Glu4]deltorphin. Tolerance to DPDPE or [D-Ala2, Glu4]deltorphin was produced by incubation of the tissues with these agonists; construction of the [D-Ala2, Glu4]deltorphin concentration-effect curve in DPDPE-tolerant tissues demonstrated cross-tolerance between these agonists and, conversely, construction of DPDPE concentration-effect curves in [D-Ala2, Glu4]deltorphin-tolerant tissues revealed cross-tolerance between these agonists.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Agonist and antagonist profiles of [D-Ala2,Glu4]deltorphin and its [Cys4]- and [Ser4]-substituted derivatives: further evidence of opioid delta receptor multiplicity.

Pharmacological evidence has suggested the presence of two supraspinal opioid delta receptor subtypes in the mouse, termed delta-1 and delta-2. [D-Pen2,D-Pen5]enkephalin (DPDPE) is thought to be primarily an agonist at the opioid delta-1 subtype, whereas H2N-Tyr-D-Ala-Phe-Glu-Val-Val-Gly-NH2 ([D-Ala2,Glu4]deltorphin) is a selective agonist at the delta-2 subtype. Based on previous reports suggesting that a receptor sulfhydryl group may be critical for ligand binding to the opioid delta receptor, the present investigation has attempted to discover whether this concept extends to the opioid delta-2 receptor. For this purpose, a cysteine-substituted deltorphin was synthesized and the potential agonist and antagonist properties of this compound, H2N-Tyr-D-Ala-Phe-Cys-Val-Val-Gly-NH2 ([D-Ala2,Cys4]deltorphin), were evaluated in an antinociceptive assay after i.c.v. administration to mice and stability in mouse brain was determined. As a control a serine-substituted deltorphin was also prepared and the potential agonist and antagonist properties of this compound, H2N-Tyr-D-Ala-Phe-Ser-Val-Val-Gly-NH2 ([D-Ala2,Ser4]deltorphin), as well as those of the parent deltorphin, [D-Ala2,Glu4]deltorphin, were evaluated. Acutely, [D-Ala2,Cys4]deltorphin, [D-Ala2,Ser4]deltorphin and [D-Ala2,Glu4]deltorphin each produced dose-related antinociceptive effects.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

In vitro potency, affinity and agonist efficacy of highly selective delta opioid receptor ligands.

The purpose of these investigations was to estimate the relative potency, receptor affinity, and agonist efficacy of several selective delta opioid agonist peptides of diverse structure, including cyclic [D-Pen2,D-Pen5]enkephalin and its p-Phe4 halogen-substituted analogs, [D-Ser2-O-tBu,Leu5,Thr6]enkephalin, Tyr-D-Ala-Phe-Asp-Val-Val-Gly-NH2 (deltorphin I) and Tyr-D-Ala-Phe-Glu-Val-Val-Gly-NH2 (deltorphin II) in functional bioassays. The mouse-isolated vas deferens (MVD) and guinea pig-isolated ileum longitudinal muscle/myenteric plexus bioassay preparations were used; selectivity for delta opioid receptors was quantified by the relative agonist activity of the various peptides in the guinea pig-isolated ileum and MVD assays; agonist affinity and efficacy were determined using the technique of partial irreversible receptor inactivation in the MVD. Data from these experiments were analyzed both by the traditional null method and by use of the operational model of pharmacologic agonism; a comparison of these two methods, which were found to be similar, was performed. Potency determinations in MVD for the various peptides essentially matched those determined in other investigations; the relative affinity of the peptides correlated with the results of radioligand binding studies performed in other laboratories. The relative efficacies of the peptides studied were indistinguishable except for the peptide deltorphin I, which demonstrated efficacy several-fold lower than the remaining seven. All peptides were sufficiently efficacious to appear as full agonists under control conditions. These results suggest that the principle factor determining increases in potency of novel delta receptor ligands to date is an increase in receptor affinity.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Differential antagonism of bremazocine- and U69,593-induced antinociception by quadazocine: further functional evidence of opioid kappa receptor multiplicity in the mouse.

In these studies, the antagonistic actions of (-)-1-Cyclopentyl-5-(1,2,3,4,5,-hexahydro-8-hydroxy-3,6,11-trimethyl-2,6 -methano-3-benzazocin-11-yl)-3-pentanone methanesulfonate (quadazocine) were evaluated against the kappa-receptor-mediated antinociceptive effects of i.c.v. (5 alpha, 7 alpha, 8 beta)-(+)-N-methyl-N-(7-(1-pyrrolidinyl)- 1-oxaspiro(4,5)dec-8-yl)benzeneacetamide (U69,593) or bremazocine in the mouse warm water tail-flick test. Quadazocine produced no antinociceptive effects alone, and it selectively antagonized the actions of bremazocine, but not U69,593, in a dose- and time-related fashion, supporting previous suggestions of differences in kappa receptors mediating the antinociceptive effects of these agonists. Quadazocine, however, also antagonized the antinociceptive effects of both DAMGO (opioid mu agonist) and DPDPE (opioid delta agonist) at doses approximately 3-fold less than those needed to attenuate significantly the effects of bremazocine. The structurally diverse kappa opioids (+-)-trans-N-methyl-N-[2-(1-pyrrolidinyl)-cyclohexyl]benzo[b]- thiophene-4-acetamide (PD 117,302), ethylketocyclazocine (EKC) and tifluadom were studied under kappa-selective conditions, and the sensitivity of their effects to 1S,2S-trans-2-isothiocyanato-4,5-dichloro-N-[2(1- pyrrolidinyl)cyclohexyl]benzeneacetamide [(-)-UPHIT] (kappa 1 antagonist) or quadazocine (kappa 2 antagonist) was determined. On this basis PD 117,302, EKC and tifluadom were classified as acting at opioid kappa 1, kappa 1, and kappa 2 receptors, respectively; EKC and tifluadom were also shown to have significant activity at opioid mu, but not delta, receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

Analgesics↗

Opioid peptide interactions with lipid bilayer membranes.

The interaction of the delta-opioid receptor selective peptides, cyclic [D-Pen2, D-Pen5]-enkephalin [DPDPE] and its acyclic analog, DPDPE(SH)2, with neutral phospholipid bilayer membranes was examined by permeability and calorimetry measurements. The permeabilities were accomplished by entrapping either peptide inside of unilamellar liposomes (composed of a mixture of a molar ratio 65:25:10 phosphatidylcholine/phosphatidylethanolamine/cholesterol) then monitoring the peptide efflux through the bilayer. The initial permeability of DPDPE (first 12 h) averaged over four experiments was (0.91 +/- 0.47).10(-12) cm s-1. In contrast the average permeability of the acylic DPDPE(SH)2 was (4.26 +/- 0.23).10(-12) cm s-1. The effect of these peptides on the phase transition, Tm, of 1,2-dipalmitoylphosphatidylcholine (DPPC) bilayers was examined by high sensitivity differential scanning calorimetry. The Tm, the calorimetric enthalpy, and the van 't Hoff enthalpy of DPPC were not significantly altered by the presence of DPDPE, whereas the calorimetric data for DPPC with DPDPE(SH)2 showed a small, yet significant, increase (0.2 degrees C) in the Tm with a 30% decrease in the cooperative unit. Both the permeability and calorimetry data reveal a stronger peptide-membrane interaction in the case of the more flexible acyclic peptide.

Amino Acid Sequence↗

The absolute configuration of an intermediate in the asymmetric synthesis of unusual amino acids.

(4R)-3-[(2'R,3'R)-2'-Bromo-3'-(phenylbutanoyl)]-4-(phenylmethyl)-2 - oxazolidinone, C20H20Br-NO3, M(r) = 402.30, monoclinic, P2(1), a = 11.542 (2), b = 7.625 (1), c = 11.667 (1) A, beta = 113.97 (1) degrees, V = 938.2 (2) A3, Z = 2, Dx = 1.42 g cm-3, lambda(Mo K alpha) = 0.71073 A, mu = 21.8 cm-1, F(000) = 412, T = 296 +/- 1 K, final R = 0.028 for 2369 observed reflections. Since a D-chiral auxiliary was used the configuration at the alpha-carbon was R as expected. The two carbonyls are aligned in opposite directions to each other to overcome van der Waals repulsions.

Aminobutyrates↗

Ring substituted and other conformationally constrained tyrosine analogues of [D-Pen2,D-Pen5]enkephalin with delta opioid receptor selectivity.

The conformationally restricted, cyclic disulfide-containing delta opioid receptor selective enkephalin analogue [D-Pen2,D-Pen5] enkephalin (DPDPE) was modified by 2' (CH3) and 3' (I, OCH3, NO2, NH2) ring substitutions and by beta-methyl conformationally constrained beta-methyltyrosine derivatives in the 1 position. The potency and selectivity of these analogues were evaluated by bioassay in the mouse vas deference (MVD, delta receptor assay) and guinea pig ileum (GPI, mu receptor assay) assays and by radioreceptor binding assays in the rat brain using [3H]CTOP (mu ligand) and [3H][p-ClPhe4]DPDPE (delta ligand). The analogues showed highly variable potencies in the binding assays and in the bioassays. Aromatic ring substituents with positive Hammett constants had decreased potency, while substituents with negative Hammett constraints has increased potency for the opioid receptor. The most potent and most selective compound based on the binding was [2'-MeTyr1]DPDPE (IC50 = 0.89 nM and selectivity ratio 1310 in the binding assays). The 6-hydroxy-2-aminotetralin-2-carboxylic acid-containing analogue, [Hat1]DPDPE, also was highly potent and selective in both assays, demonstrating that significant modifications of tyrosine in enkephalins are possible with maintenance of high potency and delta opioid receptor selectivity. Of the beta-methyl-substituted Tyr1 analogues, [(2S,3R)-beta-MeTyr1]DPDPE was the most potent and the delta receptor selective. The results with substitution of beta-MeTyr or Hat instead of Tyr also demonstrate that topographical modification in a conformationally restricted ligand can significantly modulate both potency and receptor selectivity of peptide ligands that have multiple sites of biological activity.

Amino Acid Sequence↗

Structure-activity studies of a novel bicyclic oxytocin antagonist.

In this report, we describe structure-activity studies of the bicyclic oxytocin antagonist [Mpa1,cyclo(Glu4,Lys8)]oxytocin. The monocylic analogue [dPen1, (Glu4,Lys8)]oxytocin was a weak oxytocin antagonist with a pA2 value of 5.8 in the uterotonic assay. Bicyclization of this analogue yielded [dPen1,cyclo(Glu4,Lys8)]oxytocin, a potent antagonist of oxytocin in the uterotonic assay (pA2 8.74) with a potency 3 times greater than that of [Mpa1,cyclo(Glu4,Lys8)]oxytocin. [dPen1,cyclo(Glu4,Lys8)]oxytocin also was a weak antagonist in the pressor assay with a pA2 of 6.3. To establish if the potent antagonistic effects of these bicyclic compounds was because of the lactam ring or merely the result of obtaining an optimal degree of lipophilicity of the side chains in positions 4 and 8, we synthesized a series of analogues containing neutral and/or charged groups on these side chains. Monocyclic derivatives of [Mpa1,Gln4,Lys(CHO)8]oxytocin were moderate to weak agonists of oxytocin all following classical structure-activity profiles of oxytocin. The monocyclic derivatives of [dPen1,Gln4,Lys(CHO)8]oxytocin were antagonists of oxytocin which was attributed to the dPen1 substitution. However, the potency of all of these latter derivatives was at least 1 order of magnitude less than [dPen1,cyclo(Glu4,Lys8)]oxytocin. These results suggest that the potent antagonistic properties of the bicyclic analogues [Mpa1,cyclo(Glu4,Lys8)]oxytocin and [dPen1,cyclo(Glu4,Lys8)]oxytocin can be attributed to the effect of the lactam bridge on the conformational flexibility and topographical properties of the analogues, rendering them more favorable for binding to the receptor in such a manner as to prevent transduction of a biological response.

Amino Acid Sequence↗