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D Regoli

Publications and source records attributed to D Regoli.

At least 19 recordsLinked to original sources

Effect of nociceptin on alcohol intake in alcohol-preferring rats.

The present study investigated the effect of nociceptin (NC), the endogenous ligand of the opioid-like orphan receptor ORL1, on ethanol intake in genetically selected Marchigian Sardinian alcohol-preferring (msP) rats. Acute intracerebroventricular (i.c.v.) injection of 250 or 500 ng/rat of NC, just before access to 10% ethanol (offered 2 h/day), significantly increased ethanol intake. Subchronic (7 days) i.c.v. injection of 500 ng/rat of NC, given just before access to 10% ethanol (for 30 min/day), resulted in a progressive decrease in ethanol consumption. After the end of NC treatment, rats progressively recovered their usual ethanol intake. When NC, 500 or 1000 ng/rat, was tested versus the effect of ethanol in the place conditioning paradigm, NC significantly reduced the increase in time spent in the ethanol-paired compartment after conditioning. This finding suggests that NC reduces the rewarding properties of ethanol in msP rats; thus, they may respond to the acute NC administration by increasing their ethanol intake in an attempt to achieve the usual reinforcing effect of ethanol, whereas subchronic NC treatment may result in extinction of ethanol drinking. The results of the present study suggest that the brain NC mechanisms may represent an interesting target of pharmacological interventions for the treatment of alcoholism.

Alcohol Drinking

Bioassays for NPY receptors: old and new.

Classical pharmacology performed on isolated organ preparations is an essential tool for receptor characterization and classification. Basic pharmacological parameters (e.g. ED50, ID50, pD2, pA2 as measures of apparent affinities) obtained by relating the agent concentration with the biological effect are the final results of the various steps required for drug action and necessarily reflect the complex mechanisms of cell function. Results obtained with bioassays are therefore a useful and essential part in the assessment of endogenous systems, in the present case, the NPY family of peptides and their receptors. An attempt has been made, in the present review, to present a choice of isolated organs that may provide a starting point towards the construction of a solid classical pharmacology of receptors for NPY and congeners. Some of these organs appear to be 'monoreceptor systems' (e.g. the rabbit saphenous vein) whose response is contributed by a single receptor type, others (e.g. the rat colon) are 'multiple receptor systems' and their pharmacology is much too complex and requires the use of a variety of compounds from the naturally occuring peptides, to some selective agonists and when available, specific and selective antagonists. Such compounds have been utilised by us and other workers to detect specific biological responses to NPY and congeners in peripheral tissues: such responses have been quantified, carefully analysed in pharmacological terms and characterized as biological effects mediated by Y1 (the rabbit saphenous vein), Y2 (dog saphenous vein, rat vas deferens, rat colon), Y4 (rat colon) and Y5 (rabbit ileum) receptors. Compared to findings obtained with binding assays and molecular biology experiments, the results of the bioassays show very interesting similarities. Much remains however to be done in view of providing the classical pharmacological bases that are needed in the field of NPY.

Animals

Structure-activity study of the nociceptin(1-13)-NH2 N-terminal tetrapeptide and discovery of a nociceptin receptor antagonist.

In the present study, the minimal fragment sequence required to fully activate the nociceptin (NC) receptor, namely NC(1-13)-NH2, was used as template for the design of a series of new compounds. Changes were made in the N-terminal tetrapeptide Phe-Gly-Gly-Phe, which has been shown to be essential for receptor occupation and activation. The new compounds were tested for their ability to inhibit the electrically evoked contraction of the mouse vas deferens, a pharmacological preparation sensitive to NC. Results obtained indicate that (a) the replacement of Gly2 or Gly3 with an aromatic residue (Phe) of L or D chirality eliminates the ability of the peptide to occupy the NC receptor; (b) the distance between Phe1 and Phe4 of NC appears to be critical, since any alteration of it leads to a marked decrease or a total elimination of biological activity; and (c) the insertion of a pseudopeptide bond between Phe1 and Gly2 maintains affinity but eliminates the ability of the peptide to activate the NC receptor and leads to antagonism. The peptide [Phe1psi(CH2-NH)Gly2]-NC(1-13)-NH2 acts as a selective NC receptor antagonist and is inactive on opioid receptors. The results summarized in this paper confirm and extend our previous findings by showing that the structural requirements for NC binding to its receptor are clearly different from those of opioids; in addition, this structure-activity study has led to the identification of the first NC receptor selective antagonist.

Animals

Bradykinin receptors and their antagonists.

Bradykinin and related kinins act on two receptor types, named B1 and B2. Initially identified in classical bioassays, these receptors have been cloned and characterized in binding assays performed on plasma membranes of cells expressing the native or the transfected human kinin B1 or B2 receptor types. The two classification criteria recommended by Schild, namely the order of potency of agonists and the actual affinity of antagonists have been found to be applicable for receptor classification based not on data only from bioassays but also from other approaches (binding assays, molecular biology techniques). The order of potency for agonists was found with naturally occurring peptides (the kinins, their desArg9-metabolites) and with selective agonists (e.g., [Hyp3]bradykinin, [Aib7]bradykinin): the findings obtained with agonists could be validated with various antagonists. Critical evaluation of the initial compounds, typified by D)-Arg-[Hyp3, D-Phe7]bradykinin, has indicated that they are short-acting, partial agonists, non-selective for the bradykinin B2 receptor because they can be metabolized to desArg9-fragments that act on the kinin B1 receptor. Use of such compounds has given rise to misunderstandings, especially with regard to new receptor types (e.g., type B3), the existence of which was not confirmed by molecular cloning. A second generation of antagonists, represented by D-Arg[Hyp3,Thi5,D-Tic7,Oic8]bradykinin (HOE 140) has been found resistant to degradation, long-acting in vivo, selective and specific for the B2 receptor and potent in all species tested. HOE 140 has been used successfully in basic pharmacology, in animal physiopathologies involving kinins and their receptors and even in clinical studies. A third generation of non-peptide B2 receptor antagonists, whose prototype is FR 173657 ((E)-3-(6-acetamido-3-pyridyl)-N-[N-2-4-dichloro-3-[(2-methyl-8-quinolin yl)oxymethyl]phenyl]-N-methylamino carbonyl-methyl]acrylamide) is now emerging and may represent substantial progress since FR 173657 is a potent orally active, selective and specific antagonist of the human and other species B2 receptors. There is also progress regarding antagonists for the B1 receptor. The initial compounds, especially Lys-[Leu8]desArg9-bradykinin remain among of the most potent, specific and selective B1 antagonists which, however, show partial agonistic effects in some B1 receptor subtypes (e.g., the mouse). Progress has been made with AcLys-[D-betaNal7, Ile8]desArg9-bradykinin (R 715) and Lys-Lys-[Hyp3, Cpg5, D-Tic7,Cpg8]desArg9-bradykinin (B 9958) which are pure B1 antagonists in humans and rabbits; both peptides have shown resistance to degradation by peptidases and have little if any, residual agonistic activity on mouse and rat B1 receptors. No non-peptide antagonists are yet available for the B1 receptor.

Animals

Effects of kinins on isolated stomachs of control and transgenic knockout B2 receptor mice.

The aim of this study was to investigate the pharmacological profile of the kinin B1 and B2 receptors in isolated stomachs from wild-type control and B2 receptor knockout mice. Isometric contractions evoked by bradykinin (BK) (9 nM) and desArg9BK (28 nM) were shown to be different. The contraction induced by desArg9BK had a longer duration than that evoked by BK and increased during incubation in vitro in stomachs of wild-type controls, while in the transgenic B2 receptor knockout mice, the contractions evoked by desArg9BK and BK were similar and followed the B1 receptor agonist pattern. BK but not the carboxypeptidase-resistant analog, [Phe8psi(CH2-NH)Arg9]BK, was found to be active in the stomach of B2 receptor knockout mice. BK-induced contractions were prevented by mergetpa (a carboxypeptidase M inhibitor) (10 microM) and by a the B receptor antagonist, AcLys[DbetaNal7,Ile8]desArg9BK (R 715) (0.88 microM), while not being influenced by the B2 receptor antagonist HOE 140 (0.38 microM). BK and [Phe8psi(CH2-NH)Arg9]BK were potent contractants of the wild-type mice stomach and their effects were not influenced by mergetpa or by the B receptor antagonist: they were reduced by HOE 140. After incubation in vitro for 3-4 hours, the tissues were treated with HOE 140 (4 microM) and FR-173657 (17 microM) to eliminate B2 receptor function. In these tissues, BK evoked a B1-like contraction which was inhibited by mergetpa (10 microM) and antagonized by R 715 (8 microM). The results indicate that BK acts primarily on B2 receptors. However, after intramural conversion to desArg9BK, activation of B1 receptors of the mice stomach occurs. In the tissues of B2 receptor knockout mice, BK behaves as a pure B1 receptor agonist while in stomachs of control animals, the B2 receptor contribution is overwhelming. After complete blockade of the B2 receptor, BK is able to evoke B1-mediated responses similar to those observed in tissues of B2 receptor knockout mice. It is concluded that the disruption of the B2 receptor gene eliminates the B2 receptor without influencing the B1 receptor system.

3-Mercaptopropionic Acid

Effects of vasoactive agents in healthy and diseased human saphenous veins.

PURPOSE: Smooth muscle reactivity is one of the factors involved in the pathogenesis of varicose veins. We investigated the myotropic effects of the 3 main vasoconstrictor agents norepinephrine (NE), angiotensin II (Ang II), and endothelin-1 (ET-1) in isolated human saphenous veins. METHODS: Human saphenous veins were collected from 23 patients with primary chronic venous insufficiency who underwent elective varicose vein resections and who were stratified into the following 3 groups: group 1, 7 patients in clinical class 2; group 2, 9 patients in clinical classes 3 and 4; and group 3, 7 patients in clinical classes 5 and 6. Moreover, 6 patients who underwent arterial bypass grafting procedures represented the control group. The tissues were suspended in organ baths that contained Krebs solution, and their mechanical responses were measured isometrically. The cumulative concentration-response curves to Ang II, NE, and ET-1 were performed at 90-minute intervals in each tissue. RESULTS: In the control tissues, NE, Ang II, and ET-1 induced concentration-dependent contractions with apparent affinities (pEC50, the negative logarithm to base 10 of the molar concentration of the agonist, which produces the 50% of the maximal effect) and maximal effects (maximum effect, g of contraction) that were equal to 7.06 +/- 0.23, 8.53 +/- 0.34, 7.63 +/- 0.10, and 2.21 +/- 0.33, 1.65 +/- 0.31, 2.60 +/- 0.77, respectively. Two main findings were evident in comparison of varicose veins with control tissues. First, the maximum effect that was evoked by all of the stimulants was reduced progressively with the increasing severity of the disease, which raised the third group to statistical significance for both NE and Ang II (P <.05). Second, a marked reduction of Ang II apparent affinity was already evident in tissues that were taken from patients in an early stage of the disease (P <.05). CONCLUSION: The demonstration of a significant reduction in Ang II and NE contractile activities and the important reduction of that of ET-1 in the diseased veins as compared with the control tissues extends the previous observations regarding the impairment of smooth muscle contractility in primary chronic venous insufficiency. Moreover, the dramatic reduction of Ang II affinity, which appears in an early stage of the disease, supports the hypothesis that such abnormality within the venous wall could play a role in the pathogenesis of primary varicose vein disease.

Angiotensin II

A new selective antagonist of the nociceptin receptor.

[Phe1psi(CH2-NH)Gly2]NC(1-13)NH2 has been tested in the electrically stimulated guinea pig ileum and mouse vas deferens, two nociceptin sensitive preparations. The new compound showed per se little or no effect in the two tissues, but it displaced to the right the concentration-response curves of nociceptin in a concentration-dependent manner. Schild analyses of the data indicated a competitive type of antagonism and pA2 values of 7.02 and 6.75 in the guinea-pig ileum and the mouse vas deferens, respectively. At 10 microM [Phe1psi(CH2-NH)Gly2]NC(1-13)NH2 does not modify either the inhibitory effect of deltorphin I (the selective delta opioid receptor agonist) in the mouse vas deferens or that of dermorphine (the selective mu opioid receptor agonist) in the guinea-pig ileum. The present findings indicate that [Phe1psi(CH2-NH)Gly2]NC(1-13)NH2 is a selective antagonist of the nociceptin receptor.

Animals

Pharmacological characterization of the nociceptin receptor mediating hyperalgesia in the mouse tail withdrawal assay.

1. The newly discovered neuropeptide nociceptin (NC) has recently been reported to be the endogenous ligand of the opioid-like orphan receptor. Despite its structural similarity to opioids, when injected intracerebroventricularly (i.c.v.) in the mouse, NC exerts a direct hyperalgesic effect and reverses opioid-induced analgesia. In the present investigation, these two effects of NC were evaluated under the same experimental conditions; in addition, a pharmacological characterization of the receptor mediating these central effects of NC was attempted. 2. NC caused a dose dependent (0.1-10 nmol/mouse), naloxone-insensitive reduction of tail withdrawal latency with a maximal effect of about 50% of the reaction time observed in saline injected mice. In the same range of doses, NC inhibited morphine (1 nmol/mouse) induced analgesia. 3. The effects of the natural peptide were mimicked by NCNH2 and NC(1-13)NH2 (all tested at 1 nmol/mouse) while 1 nmol NC(1-9)NH2 was found to be inactive either in reducing tail withdrawal latency or in preventing morphine analgesia. 4. [Phe1psi(CH2-NH)Gly2]NC(1-13)NH2 ([F/G]NC(1-13)NH2), which has been shown to antagonize NC effects in the mouse vas deferens, acted as an agonist, mimicking NC effects in both the experimental paradigms. In addition, when NC and [F/G]NC(1-13)NH2 were given together, their effects were additive. 5. These results demonstrate that both the direct hyperalgesic action and the anti-morphine effect of NC can be studied under the same experimental conditions in the mouse tail withdrawal assay. Moreover, the pharmacological characterization of the NC functional site responsible for these actions compared with the peripherally active site, indicates the existence of important differences between peripheral and central NC receptors.

Analgesia

Nociceptin receptor binding in mouse forebrain membranes: thermodynamic characteristics and structure activity relationships.

The present study describes the labelling of the nociceptin (NC) receptor, ORL1, in mouse forebrain membranes with a new ligand partially protected from metabolic degradation at the C-terminal; the ligand, [3H]-NC-NH2, has a specific activity of 24.5 Ci mmol(-1). Saturation experiments revealed a single class of binding sites with a KD value of 0.55 nM and Bmax of 94 fmol mg(-1) of protein. Non specific binding was 30% of total binding. Kinetic binding studies yielded the following rate constants: Kobs = 0.104 min(-1); K1 =0.034 min(-1): T1/2=20 min; K(+1)=0.07 min nM(-1). Thermodynamic analyses indicated that [3H]-NC-NH2 binding to the mouse ORL1 is totally entropy driven, similar to what has been observed for the labelled agonists to the opioid receptors OP1(delta), OP2(kappa) and OP3(mu). Receptor affinities of several NC fragments and analogues, including the newly discovered ORL-1 receptor antagonist [Phe1psi(CH2-NH)Gly2]NC(1-13)-NH2([F/G]NC(1-13)-NH2), were also evaluated in displacement experiments. The competition curves for these compounds were found to be parallel to that of NC and the following order of potency was determined for NC fragments: NC-OH = NC-NH2-NC(1-13)-NH2 > > NC(1-12)-NH2 > NC(1-13)-OH > > NC(1-11)-NH2, and for NC and NC(1-13)-NH2 analogues: [Tyr1]NC-NH2 > or = [Leu1]NC(1-13)-NH2 > or = [Tyr1]NC(1-13)-NH2 > or = [F/G]NC(1-13)-NH2 > > [Phe3]NC(1-13)-NH2 > [DF/G]NC(1-13)-NH2. Standard opioid receptor ligands (either agonists or antagonists) were unable to displace [3H]-NC-NH2 binding when applied at concentrations up to 10 microM indicating that this new radioligand interacts with a non opioid site, probably the ORL1 receptor.

Animals

Contractile activity of endothelins and their precursors in human umbilical artery and vein: identification of distinct endothelin-converting enzyme activities.

A number of studies using endothelin (ET) precursors, commonly termed big ETs, have revealed the presence of endothelin-converting enzyme (ECE) activity in various vascular and nonvascular preparations. Since then, more than one ECE has been cloned. It has also been observed that big ET-1 and big ET-3 are not converted by the same enzyme. The ECE responsible for big ET-3 conversion is rarely present because big ET-3 does not induce a contractile response in most isolated preparations tested. In this study we characterized ECE activities present in two human preparations, the umbilical artery and vein, testing the contractile activities of the three human Big ETs in the presence or absence of phosphoramidon, a dual ECE/neutral endopeptidase inhibitor. The results show that human big ET-1(1-38) is 6.3-fold more potent than big ET-2(1-38) in the human umbilical artery (an ETA preparation), whereas big ET-1 is equipotent to big ET-2 in the vein (which contains ETA and ETB receptors). Human big ET-3(1-41) is inactive on both vessels. Furthermore, phosphoramidon attenuated human big ET-1-induced contractions only in the umbilical artery and not in the vein. Such observations, in terms of substrate selectivity and phosphoramidon sensitivity, suggest the presence of distinct ECE activities in human vein and arteries.

Aspartic Acid Endopeptidases

Acute ACE inhibition causes plasma extravasation in mice that is mediated by bradykinin and substance P.

The use of angiotensin-converting enzyme (ACE) has been associated with the occurrence of adverse effects, including cough and angioneurotic edema. Accumulation of kinins has been suggested to play a major role in these adverse effects of ACE inhibitor, although conclusive evidence for such a role is lacking. We investigated whether ACE inhibition increases plasma extravasation in mice (Swiss, C57Bl/6J, and J129Sv/Ev strains) via inhibition of bradykinin metabolism and stimulation of neurogenic inflammatory mechanisms. Intravenous captopril and enalapril increased the extravasation of Evans blue dye in all tissues examined (trachea, stomach, duodenum, and pancreas). This effect was evident 15 minutes after drug administration. The particulate dye Monastral blue identified the sites of captopril-induced leakage in the microvasculature. Pretreatment with the bradykinin B2 receptor antagonist Hoe 140 or with the tachykinin NK1 receptor antagonist SR 140333 inhibited captopril-evoked increase in plasma extravasation. In mice in which the gene encoding the bradykinin B2 receptor was disrupted by gene targeting, neither bradykinin nor captopril increased plasma extravasation. Pretreatment with Hoe 140 did not reduce the hypotensive response induced by captopril. The present findings suggest that ACE inhibition increases kinin levels in tissues and/or plasma. These increased kinin levels increase microvascular leakage in mouse airways and digestive tract via the release of tachykinins from terminals of primary sensory neurons. Exaggerated kinin production and the subsequent stimulation of peptide release from sensory nerves may be involved in adverse effects of ACE inhibitors.

Angiotensin-Converting Enzyme Inhibitors

The rabbit ileum: a sensitive and selective preparation for the neuropeptide Y Y5 receptor.

The rabbit ileum shows high sensitivity to neuropeptide Y. Relaxations are obtained in this tissue with human pancreatic polypeptide > peptide YY > > [Leu31,Pro34]neuropeptide Y > rat pancreatic polypeptide > human neuropeptide Y in this order of potency that is indicative of a Y5 receptor. Effects of neuropeptide Y and congeners are not affected by neuropeptide Y Y1 receptor antagonist (BIBP 3226), but are reduced by the neuropeptide Y Y5 receptor antagonist JCF 104 (2-(naphtalen-1-yl)-3-phenylpropane-1,2-diamine). Rabbit ilea provide sensitive and selective neuropeptide Y Y5 receptor preparations.

Animals

Pharmacology of kinins in the arterial and venous mesenteric bed of normal and B2 knockout transgenic mice.

We have tested the vasoactive effects of kinins in addition to various other endothelium-dependent or independent agonists in the arterial and venous perfused mesenteric circuits of the mouse. Bradykinin (0.1 pmol-100 nmol), but not des-Arg9-bradykinin (10 nmol) induced a dose-dependent vasodilation of the precontracted arterial and venous mesenteric vasculature of the mouse. Furthermore, acetylcholine (2.5 nmol) also induced a marked arterial vasodilation but was without effect on the venous side. Other endothelium-dependent vasodilators, such as platelet-activating factor (PAF) (1 nmol), tachykinin NK1 selective agonist ([Sar9,Met(O2)(l1) ]substance P) (0.5 nmol) and adenosine diphosphate (5 nmol), were without effect on either side of the mesenteric bed of the mouse. The bradykinin B2 receptor selective antagonist (HOE 140) abolished the arterial and venous vasodilation induced by bradykinin without affecting that of acetylcholine or sodium nitroprusside. In addition, the bradykinin B1 receptor antagonist des-Arg9-[Leu8]bradykinin was without effect on the responses induced by bradykinin. A nitric oxide synthase inhibitor N(omega)-nitro-L-arginine methyl ester (L-NAME) markedly reduced, whereas removal of the endothelium with 3-[3-cholamidopropyl)dimethylammonio]-1-propane sulfonate (CHAPS) abolished dilatation to bradykinin and acetylcholine (arterial side only) without affecting that induced by sodium nitroprusside in the mouse arterial and venous mesenteric circuits. In the same two circuits of transgenic B2 knockout mice, the vasodilatory responses to bradykinin were absent, whereas the arterial circuit still responded to acetylcholine by a L-NAME-sensitive vasodilation. Our results suggest the exclusive contribution of B2 receptors located on the endothelium in the vasodilatory effects of bradykinin in the arterial and venous mesenteric circuits of the mouse.

Animals

Address and message sequences for the nociceptin receptor: a structure-activity study of nociceptin-(1-13)-peptide amide.

Nociceptin (NC) and some of its fragments as well as nociceptin-(1-13)-peptide amide [NC- (1-13)-NH2] and a series of its analogues were prepared and tested in the mouse vas deferens in an attempt to identify the sequences involved in the activation (message) and in the binding (address) of nociceptin to its receptor. The NC receptor that inhibits the electrically evoked twitches of the mouse vas deferens was demonstrated to be distinct from the delta opioid receptor, since naloxone and Dmt-Tic-OH (a selective delta opioid receptor antagonist) block the delta opioid receptor but have no effect on the nociceptin receptor. Results from structure-activity experiments suggest that (a) the entire sequence of NC may not be required for full biological activities, since NC(1-13)-NH2 is as active as NC; (b) fragments of NC have however to be amidated as in NC(1-13)-NH2 in order to be protected from degradation by proteases; (c) cationic residues (as Arg8,12, Lys9,13) appear to play a functional role, since their replacement with Ala in the sequence of NC(1-13)-NH2 leads to inactivity; (d) the N-terminal tetrapeptide Phe-Gly-Gly-Phe is essential for activity: its full length and flexibility appear to be required for NC receptor activation and/or occupation; (e) Phe4 and not Phe1 appears to be the residue involved in receptor activation, since the replacement of Phe1 with Leu has no effect, while that of Phe4 leads to inactivity. Results summarized in this paper indicate that the structural requirements of NC for occupation and activation of its receptor are different from that of opioids, particularly delta agonists.

Amino Acid Sequence

The dog saphenous vein: a sensitive and selective preparation for the Y2 receptor of neuropeptide Y.

The dog saphenous vein responds to neuropeptide Y with a dose-dependent contraction and this vasopressor effect is not altered by the removal of the endothelium nor by the neuropeptide Y Y1 receptor antagonist, BIBP 3226 ((R)-N2-(diphenylacetyl)-N-[(n-hydroxyphenyl)methyl]-argininami de). The dose-response curves obtained with neuropeptide Y, peptide YY and with C-terminal fragments such as neuropeptide Y-(2-26), neuropeptide Y-(13-36) and peptide YY-(3-36) have similar slopes and maxima. EC50 values of these compounds vary between 30 +/- 10 and 89 +/- 47 nM. The neuropeptide Y Y1 receptor-selective agonist [Leu31,Pro34]neuropeptide Y and human pancreatic polypeptide are inactive up to 1 microM. This pharmacological profile suggests that the contraction of the dog saphenous vein induced by neuropeptide Y and its homologues or fragments is mediated by a neuropeptide Y Y2 receptor type. Moreover, this neuropeptide Y Y2 receptor appears to be localized in the venous smooth muscle, where it exerts a direct myotropic effect that may be useful for the pharmacological characterization of new compounds acting as agonists or antagonists of the neuropeptide Y Y2 receptor.

Animals

Solution conformation of nociceptin.

Nociceptin, a novel heptadecapeptide, interacts with ORL1 a G protein-coupled receptor whose sequence is closely related to that of the kappa opioid receptor but has no opioid activity. We have investigated the conformational preferences of Nociceptin also in comparison to Dynorphin A. The N-terminal part of Nociceptin has the same conformational preferences of the message of endogenous opioids but the C-terminal part of the sequence is more flexible than the corresponding address of Dynorphin A. [Tyr1]-Nociceptin, while retaining nociceptive activity, has also an opioid activity comparable to that of enkephalins.

Amino Acid Sequence