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R Tomatis

Publications and source records attributed to R Tomatis.

At least 37 records · Page 2Linked to original sources

Relationship between receptor affinity and topography of N-terminally extended and bridged [Tyr1-->Asp4]deltorphin C analogues: novel probes for the delta-opioid receptor.

Receptor binding of N-terminally extended Tyr1 deltorphin C analogues diminished delta and mu affinities, but with only a moderate loss in delta selectivity. Pseudopeptide bridged [Tyr1-->Aps4]deltorphin C analogues drastically decreased delta affinity to yield peptides with poor delta selectivity. Low energy conformers of the peptides revealed that the bridge modifies the spatial orientation of the backbone of the N- and C-terminal sequences with respect to deltorphin C. The data indicate that the delta receptor site can accommodate an opioid peptide containing an N-terminal aliphatic extension on amino-Tyr1, but not a heptapeptide conformationally constrained between residues 1 and 4.

Amino Acid Sequence

Structure-activity relationships of cyclic and linear peptide T analogues.

Using the potent cyclic peptide T analog [formula: see text] as parent compound, a series of analogues were synthesized and their potencies in a monocyte chemotaxis assay were compared with those of correspondingly modified linear peptides. Structure-activity relationships observed with cyclic compounds did not always parallel those determined with linear analogues. [formula: see text] showed the highest affinity to CD4 receptor of monocytes of any peptide thus far studied. It also proved to be highly resistant to degradation by plasma or brain enzymes.

Amino Acid Sequence

Studies on the anti-phospholipase A2 and anti-inflammatory activities of a uteroglobin fragment and related peptides.

The nonapeptide antiflammin P1 (H-Met-Gln-Met-Lys-Lys-Val-Leu-Asp-Ser-OH), its isoAsp8 analogue and the corresponding aminosuccinyl peptide were prepared, characterized and tested for inhibition of phospholipase A2 (PLA2) in vitro and for anti-inflammatory activity in vivo under assay conditions recently recommended. All peptides are devoid of PLA2 inhibitory and anti-inflammatory activity.

Amino Acid Sequence

Alterations in vasoactive intestinal polypeptide-related peptides after pentylenetetrazole-induced seizures in rat brain.

The possible involvement of vasoactive intestinal polypeptide-related peptides in pentylenetetrazol (PTZ)-induced seizures in rats was investigated. The chemoconvulsant PTZ was administered (45 mg/kg i.p.) either acutely or chronically for three days. The detailed time course of changes in VIP-(1-28) and VIP-(22-28) was examined in several rat brain areas 5 and 20 min and 24 h after acute treatment and after three days chronic treatment. Ir-VIP levels dramatically decreased in all areas 5 min after PTZ injection, remained low after 20 min and progressively increased back to control values after 24 h and after three days of repeated treatment (except for the cortex). Chromatographic analysis of extracts prepared from PTZ-treated rats revealed a concomitant decrease in VIP-(1-28) and increase in VIP-(22-28). Thus VIP-(22-28) might be a product of the internal cleavage of the precursor VIP-(1-28) after its neuronal release; alternatively, VIP-(22-28) might be generated by post-transcriptional processing of VIP-(1-28), and thus be an 'independent' neuropeptide. The results suggest that VIP-(1-28)/VIP-(22-28)-containing neurons might be involved in PTZ-induced seizures in rat brain, and that VIP-(22-28) might play a role in these experimental seizures.

Amino Acid Sequence

Para-substituted Phe3 deltorphin analogues: enhanced selectivity of halogenated derivatives for delta opioid receptor sites.

The delta-selective opioid peptide deltorphin C(H-Tyr-D-Ala-Phe-Asp-Val-Val-Gly-NH2) (DEL C) was modified by para-substitution of Phe3 with halogens (F, Cl, Br, I), amino, or nitro groups. The bioactive potencies in peripheral tissues and brain receptor selectivities of these analogues depended upon the particular substituent; peptides containing halogen substituents exhibited the least disruptive effect. In the mouse vas deferens (MVD) bioassay, [p-ClPhe3]DEL C displayed equivalent bioactivities to DEL C; in combination with the guinea pig ileum (GPI) bioassay, [p-ClPhe3]DEL C and [p-BrPhe3]DEL C exhibited marked preference for delta sites (IC50GPI/IC50MVD = 11,250 and 6,363, respectively), which are approximately 4- and 2-fold greater than DEL C. In a receptor binding assay, none of the halogenated analogues had delta affinities (Ki) exceeding that of DEL C; however, in terms of delta selectivity (Ki mu/Ki delta), [p-BrPhe3]DEL C was nearly twice as selective as DEL C, while [p-FPhe3]DEL C was equivalent, and [p-IPhe3]DEL C only 25% less selective. The only correlation evident with the halogenated derivatives occurred between IC50GPI and Ki mu (r = 0.814) rather than between delta receptor studies (MVD or Ki delta); interestingly, IC50GPI also correlated with K' (r = 0.982). The p-amino or p-nitro substituents of Phe3 in DEL C and DEL B (= [Glu4]DEL C) were deleterious for bioactivity (MVD) (losses ranged from 400- to approximately 8,000-fold) and in receptor binding assays, where delta affinities decreased 140- to 840-fold and delta selectivities by 34- to 380-fold. p-Nitro-Phe3 was the most detrimental substitution for all the parameters measured for both deltorphins: the loss in MVD activity, however, was less with DEL B than with DEL C, which was the opposite for delta receptor affinity.

Amino Acid Sequence

Stereospecificity of amino acid side chains in deltorphin defines binding to opioid receptors.

A series of individual D-amino acid replacement analogues of deltorphin A, several of which were in combination with a His4 deletion, were used to probe alterations of side-chain orientation on peptide binding parameters with rat brain opioid receptors. Peptides with D-amino acids in residues 1, 3, and 5 exhibited diminished affinities primarily for delta receptors (88-1200-fold) with selectivity decreasing by factors of 13-64-fold relative to deltorphin A (Ki delta = 0.45 nM; Ki mu/Ki delta = 764): the aromatic side chains Tyr1 and Phe3, which lie in the N-terminal "message" domain and the aryl side chain of Leu5 in the C-terminal "address" domain, appear to play essential roles in conferring high delta affinity and selectivity. Although D-His4 only decreased delta affinity by 6-fold and selectivity by a factor of 4, His appears to be involved as an integral component of both domains: [des-His4]deltorphin A and [des-His4] analogues containing consecutive D-amino acid replacements in the remaining residues exhibited weak binding to delta receptors and poor delta selectivity. Substitution of D-Met2 in deltorphin A by D-Ala or D-Nle decreased delta selectivities 3-6-fold through an elevation in mu affinities; however, the converse replacement, D-Met for D-Ala2 in deltorphin B, diminished beta selectivity by an order of magnitude only through the loss in delta affinity. The data show that the high delta affinity and selectivity of deltorphins correlate with and require a strict stereospecificity of the amino acid residue side chains.

Amino Acids

Conformational analysis of an opioid peptide in solvent media that mimic cytoplasm viscosity.

Many neuropeptides exert their action between the presynaptic vesicles and postsynaptic transmembrane receptors, crossing different layers of specialized cytoplasm. Biomimetic media usually employed to study bioactive peptides do not reproduce the physico chemical environment of cytoplasm--in particular, the high viscosity of this biological fluid. Here we describe a conformational study of a delta-selective opioid peptide, deltorphin I, at variable temperatures in several biocompatible media characterized by varying values of viscosity and dielectric constant. It was found that only viscosity, among these parameters, induces ordered conformations; that is, it acts as a conformational sieve. This finding suggests that the high viscosity of the intersynaptic fluid contributes, in addition to the membrane catalysis proposed by Schwyzer, in overcoming the so-called entropic barrier to the transition state of peptide-receptor interaction by selecting ordered conformations prior to receptor interaction. The folded conformer found in the 80:20 (v:v) DMSOd6/H2O cryoprotective mixture at 265 K has a shape consistent with those of rigid nonpeptidic opiates.

Amino Acid Sequence

Synthesis and pharmacological activity of the N-terminal dermorphin tetrapeptide analogs with CH2-NH peptide bond isosteres.

The synthesis of pseudotetrapeptides H-Tyr-D-Ala-Phe-NH-(CH2)2--NH2 (1a), H-Tyr-D-Ala-Phe-psi (CH2--NH)-Gly-NH2 (2a), H-Tyr-D-Ala-psi (CH2--NH)-Phe-Gly-NH2 (3a), and H-Tyr-psi (CH2--NH)-D-Ala-Phe-Gly-NH2 (4a), representing the N-terminal tetrapeptide sequence of dermorphin, in which amide bonds are replaced by CH2--NH bond, is described. N-acetyl-Tyr and desamino-Tyr pseudopeptide analogs (1-4b), (1-3c) are also described. The analogs were assayed in binding studies based on displacement of mu and delta-receptor selective radiolabels from rat brain membrane and in a bioassay using guinea pig ileum (GPI). Pseudopeptides in which the C-terminal (1a) or D-Ala-Phe (3a) amide bond are substituted, exhibit higher mu-affinities and mu-receptor selectivity than the corresponding Phe-Gly or Tyr-D-Ala analogs (2a, 4a). Acetyl-and desamino-Tyr pseudopeptide analogs (1-4b) and (1-3c) did not exhibit mu and delta-opioid receptor affinity at nM concentration. The relevance of the single peptide replacement and of its association to acetylation or amino group elimination of Tyr, is discussed on the basis of a receptor model for mu and delta opioids.

Amino Acid Sequence

Opioid receptor selectivity reversal in deltorphin tetrapeptide analogues.

Deltorphin N-terminal tetrapeptides [DEL A: H-Tyr-D-Met-Phe-His-R, where R = -NH2, -NH-NH2, -OCH3, -OH, -NH-NH-CO-R' (R' = -CH3 or adamantane); DEL C: H-Tyr-D-Ala-Asp-R (R = -OH, -NHCH3)], were used in a receptor binding assay with [3H]DADLE and [3H]DPDPE for delta sites, and [3H]DAGO for mu sites; tetrapeptide Ki delta values were similar with either [3H]-delta ligand. DEL A tetrapeptides C-terminally substituted with -NH2, -NH-NH2, -OCH3, and -OH had 10 to greater than 1,000-fold decreased Ki delta values, while Ki mu increased 5 to 100-fold to yield mu selectivity. C-Terminal substitution with -NH-NH2 and -OCH3 conferred highest mu selectivities; adamantyl and acetyl hydrazide derivatives were non-selective. DEL-(1-4)-OH peptides had decreased delta and mu affinities: DEL A-[Asp4]-(1-4)-OH and DEL C-(1-4)-OH had low affinities (greater than 1 microM), however, the Ki delta of the former was 5-fold greater than the latter, and the Ki mu was less by 15-fold. The data suggest that the "message" domain of DEL exhibits receptor selectivity different from that of the heptapeptide.

Animals

New insights on mu/delta selectivity of opioid peptides: conformational analysis of deltorphin analogues.

The message domain of dermorphin (Tyr-D-Ala-Phe), a natural mu-opioid heptapeptide, has long been considered the main cause of the high mu selectivity of this peptide and of its analogues. The recent discovery, in the skin of Phyllomedusa sauvagei (i.e., the same natural source of dermorphin) and of Phyllomedusa bicolor of deltorphins, challenges this belief. Deltorphins, in fact, are three heptapeptides characterized by a message domain typical of mu-selective peptides, but endowed of an extremely high delta selectivity, the highest of all natural opioid peptides. A conformational analysis of dermorphin and deltorphins, based on nmr studies in DMSO and cryoprotective mixtures and internal energy calculations, showed that the enormous differences in receptor selectivity can be interpreted on the basis of receptor models for mu and delta opioids that recognize the same beta-turn in the N-terminal part, but discriminate for the conformation and polarity of the C-terminal part. Here we present the synthesis, biological activity, and conformational analysis in solution of three deltorphin analogues with very similar constitution, but with different net charge, different location of negative residues, or even without negative residues, which confirm these hypotheses and show that His4 can play a specific structural role.

Amino Acid Sequence

Function of negative charge in the "address domain" of deltorphins.

Deltorphins A, B, and C exhibit high delta-affinities (Ki = 0.12-0.31 nM) and very high delta-receptor binding selectivities (Ki mu/Ki delta = 1800-4100). A study of the delta-receptor binding properties of 15 deltorphin analogues focused primarily on the influence of the anionic group in the C-terminal tetrapeptide. Amidation of the beta-carboxyl groups of [Asp7], [Glu4], or [Asp4] in deltorphins A, B, and C, respectively, yielded peptides with enhanced mu-receptor affinities and minor changes in delta-affinities (Ki delta = 0.20-0.65 nM), but 5-8-fold diminished delta-selectivities. A free C-terminal carboxyl group markedly reduced delta-affinities and decreased delta-selectivities 6-11-fold; thus, the C-terminal amide group critically facilitates delta-affinity. Modifications in the anionic charged group or hydrophobic residues in the C-terminal tetrapeptide address domain of deltorphin A altered spatial distributions critical for delta-affinity and selectivity; e.g., [Nle6]deltorphin A enhanced mu-affinity and lowered delta-selectivity by two-thirds; the progressive, step-wise repositioning of Asp in deltorphin C (from position 4 to 7) was accompanied by linear decreases in delta-affinities and -selectivities, and increased mu-affinities of these peptides; enhancement of the charge density to -2, in [Asp6, Asp-OH7]deltorphin A, decreased delta-affinity and -selectivity, while [Asp4,5,His7]deltorphin A bound to neither mu- nor delta-sites. These results demonstrate that while an anionic group may occasionally facilitate high delta-receptor affinity, it represents an absolute requirement for the high delta-binding selectivity of these peptides. The locations of the charged groups relative to hydrophobic residues in the address domain of the peptide are also critical determinants for both delta-affinity and -selectivity.

Animals

Synthesis and structure-activity relationships of deltorphin analogues.

In order to study the structure-activity relationships of natural opioid deltorphins (H-Tyr-D-Met-Phe-His-Leu-Met-Asp-NH2 and H-Tyr-D-Ala-Phe-Asp [or Glu]-Val-Val-Gly-NH2), 15 analogues were synthesized by the solution method. Their activities were determined in binding studies based on displacement of mu- and delta-receptor selective radiolabels from rat brain membranes and in two bioassays, using guinea pig ileum and mouse vas deferens. The obtained data indicate that the high delta-selectivity of deltorphins can be due to the constitution/conformation of the C-terminal part and, at least in part, to preselection by charge.

Amino Acid Sequence

On the degradation of the deltorphin peptides by plasma and brain homogenate.

The peptidase-resistance of deltorphins (DEL-A, H-Tyr-D-Met-Phe-His-Leu-Met-Asp-NH2) and (DEL-C, H-Tyr-D-Ala-Phe-Asp-Val-Val-Gly-NH2), highly selective and potent agonists of the delta opioid receptor, were investigated in vitro. DEL-C was fully resistant to degradation by rat plasma and strongly resistant to degradation by rat brain homogenates. DEL-A was cleaved with a half-life of 131.6 min upon incubation with plasma, and 57.4 min with rat brain homogenates. N-terminal truncated sequences of DEL-A and -C with free carboxyl groups, were also analyzed for receptor binding activity using [3H] DADLE for delta sites and [3H] DAGO for mu sites. The high enzymatic stability associated with deltorphins and their degradation products may make them prime candidates to characterize the role of delta-receptors in vivo.

Amino Acid Sequence

New features of the delta opioid receptor: conformational properties of deltorphin I analogues.

Deltorphin I is an opioid peptide of sequence H-Tyr-D-Ala-Phe-Asp-Val-Val-Gly-NH2, recently isolated from the skin of Phyllomedusa bicolor. Its enormous selectivity towards the delta opioid receptor and the similarity of the conformation of the N-terminal part of the sequence with that of dermorphin (H-Tyr-D-Ala-he-Gly-Tyr-Pro-Ser-NH2), a mu selective peptide, prompted the synthesis, biological evaluation and comparative conformational study of four analogs. A 1H-NMR study showed that the conformational preferences of the N-terminal sequences of all peptides are similar. The different selectivities towards opioid receptors have been interpreted in terms of charge effects in the interaction with the membrane and at the receptor site and of hydrophobicity of the C-terminal part, when structured in a folded conformation.

Amino Acid Sequence

Chemotactic response of human monocytes to pentapeptide analog derived from immunodeficiency virus protein gp 120.

The octapeptide sequence of peptide T is contained within the envelope of HIV and seems to mediate the viral binding to CD4 expressing cells, including monocytes. The biological activity of the alpha-aminobutyric acid pentapeptide derived from the C-terminal sequence of peptide T, in which the polar side chain of threonine in position 4 is substituted by a hydrophilic group, is measured by the monocyte chemotaxis assay. The chemotactic activity of human monocytes is assessed by determining the concentration at which the pentapeptide analog is maximally active and the effectiveness at that concentration, in comparison with peptide T and two shorter homologs, the pentapeptide and tetrapeptide. These experiments suggest that the synthetic analog is a potent chemotactic factor active at picomolar concentrations and that it competes with peptide T for the monocyte binding site.

Chemotaxis, Leukocyte

Synthesis, metabolic stability and chemotactic activity of peptide T and its analogues.

Acquired immunodeficiency syndrome (AIDS) is initiated by the attachment of the human immunodeficiency virus (HIV) to a surface glycoprotein CD4 present on T4 helper/inducer lymphocytes, monocytes/macrophages and other cells. A simple octapeptide (H-Ala-Ser-Thr-Thr-Thr-Asn-Tyr-Thr-OH, peptide T) seems to inhibit HIV infectivity and to activate human monocyte chemotaxis. In order to study in vitro metabolic stability and structure-activity relationships, peptide T and a number of analogues were prepared and tested on human monocytes by chemotactic assay. Peptide T and the shorter fragments T(3-8)-OH and T(4-8)-OH displayed potent bioactivity (maximal chemotactic activity in the range 10(-11)-10(-10) M). The C-terminal heptapeptide showed a reduction of potency, while further truncations at N-terminus of T(4-8)-OH abolished the biological action. In the octapeptide series, whereas the alpha-amino butyric acid (Abu) substitution for Thr4 was well tolerated, the same "slight" structural change at Thr5 or Thr8 was very detrimental. Finally, [D-Asn6]T(1-8)-OH analogue has low chemotactic activity. All these results indicate that i) the C-terminal pentapeptide is the minimum sequence required for bioactivity, ii) residues 5 to 8 appear to play a crucial biological role, iii) peptide T chemotaxis is mediated, at least in part, through the polar properties of Thr side chains at the critical positions 5 and 8, while the Thr4 does not interfere with biological characteristics of peptides.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence