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Photoaffinity labeling of [3H]flunitrazepam- and [3H]Ro15-4513-bound pellets in rat cerebral cortex and cerebellum.

Irreversible incorporation of [3H]flunitrazepam and [3H]Ro15-4513 into GABA/benzodiazepine receptor subunits was studied by UV irradiation using ligand-bound membrane pellets from rat cerebral cortical and cerebellar synaptic membranes. Specific incorporation for [3H]flunitrazepam was greater in the pellet than in the suspension. The incorporation was identical for [3H]Ro15-4513 in both pellet and suspension. With the ligand-bound pellets, 50% of the available binding sites were photolabeled by both ligands in cortex and cerebellum. SDS polyacrylamide gel electrophoresis and fluorography of [3H]flunitrazepam photo-labeled receptor revealed the same number of major sites in both brain regions. In contrast, [3H]Ro15-4513 appears to label fewer sites in cortex and cerebellum. Photoaffinity labeling with [3H]flunitrazepam in ligand-bound membrane pellet provides a more selective and reliable method for studying the subunit structure of GABA/benzodiazepine receptor complex.

Affinity Labels↗

Identification of thyroid hormone receptors in rat liver nuclei by photoaffinity labeling with L-thyroxine and triiodo-L-thyronine.

Photoaffinity labeling of rat liver nuclear extract with underivatized thyroid hormones was performed after incubation with 1 nM [3',5'-125I]thyroxine ([125I]T4) or [3'-125I]triiodothyronine [( 125I]T3) by irradiation with light above 300 nm. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of the covalently photolabeled nuclear extract revealed four distinct hormone binding proteins of molecular masses 96, 56, 45, and 35 kilodaltons (kDa), respectively. Distribution of the hormone among these proteins was similar for T4 and T3. The 56- and 45-kDa proteins were the most prominently labeled. The specificity of the photoattachment of thyroid hormones to these nuclear proteins was verified by the irradiation of eight randomly chosen proteins and two proteins known to have thyroid hormone binding sites, human thyroxine binding globulin and bovine serum albumin. Only the latter two were photolabeled with [125I]T4. Competition studies performed by incubating nuclear extracts with [125I]T4 or [125I]T3 in the presence of increasing amounts of the corresponding unlabeled hormone (10-, 100-, and 1000-fold molar excess) demonstrated that (1) photoattachment of labeled T3 or T4 to the 56- and 45-kDa proteins was inhibited by 67-78% and 73-85%, respectively, after incubation with a 1000-fold molar excess of unlabeled hormone, (2) in the presence of lower molar excesses of the corresponding competitor (10- and 100-fold), photoattachment of labeled T3 or T4 to the 56- and 45-kDa receptors was gradually inhibited to a similar extent on both proteins, and (3) the 35- and 96-kDa proteins, although having thyroid hormone binding sites, display lower binding activities since the inhibition of photoattachment of labeled T3 or T4 by a 1000-fold molar excess of unlabeled hormone did not exceed 30-42% and 26-49%, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Affinity Labels↗

Estrogen photoaffinity labels. 2. Reversible binding and covalent attachment of photosensitive hexestrol derivatives to the uterine estrogen receptor.

The ability of two radiolabeled, photoreactive estrogen analogues, [3H]hexestrol diazoketopropyl ether ([3H]Hex-DKP) and [3H]hexestrol azide ([3H]Hex-N3), to covalently label the uterine estrogen receptor is studied. Lamb uterine estrogen receptor preparations that have been partially purified (ammonium sulfate precipitation, Sephadex G-200 chromatography) and disaggregated by limited trypsinization can be electrophoresed on polyacrylamide gels under conditions where binding activity is preserved. This electrophoretic procedure was used to fractionate the proteins labeled by the two photoreactive estrogen analogues. Prior to photolysis, peaks of radioactivity indicating estrogen specific binding of [3H]-Hex-N3 and [3H]Hex-DKP are evident on the gels, although dissociation of the latter compound is extensive. When preparations of uterine estrogen receptor that contain the photoreactive derivatives are irradiated and then electrophoresed, reversibly labeled proteins can be distinguished from irreversibly labeled ones (covalently bonded), by extraction of the individual gel slices with organic solvents. While no irreversible binding to receptor appears to result from irradiation with [3H]Hex-DKP, irradiation with [3H]Hex-N3 does covalently label the estrogen receptor. The receptor covalently labeled with [3H]Hex-N3 has the same electrophoretic mobility as the unlabeled receptor; the covalent labeling process is estrogen-site specific, and the efficiency of labeling (15-20%) is consistent with the inactivation efficiency of Hex-N3, previously measured by an indirect assay. This is the first example of the labeling of a steroid hormone receptor by photoaffinity labeling.

Affinity Labels↗

Modification of chloride ion transport in human erythrocyte ghost membranes by photoaffinity labeling reagents based on the structure of 5-nitro-2-(3-phenylpropylamino)-benzoic acid (NPPB).

Using human red blood cell ghost membranes, we have evaluated 5-nitro-2-[N-3-(4-azidophenyl)-propylamino]-benzoic acid and 5-nitro-2-[N-3-(4-azido-2,3,5,6-tetrafluorophenyl)-propylamino]- benzoic acid (FAzNPPB) as photoaffinity labeling agents based on the structure of the widely important Cl- channel blocker 5-nitro-2-(3-phenylpropyl-amino)-benzoic acid (NPPB). The tetrafluoro-substituted aryl azide was found to be a more effective photoinactivating agent than the corresponding protio compound. Using a tritiated version ([3H]FAzNPPB), we demonstrated that photoinactivation of Cl- flux was accompanied by photolabeling of the band 3 protein and membrane lipids. Both processes were diminished in the presence of NPPB and the related arylanthranilate flufenamic acid. Photolabeling resulted in the incorporation of 1.0 +/- 0.2 mol 3H/mol protein in the band 3 integral membrane domain, whereas the cytoplasmic domain was essentially unlabeled. By sodium dodecyl sulfate-polyacrylamide gel electrophoresis, photolabeling was found to be the result of partial labeling of at least three different regions of the membrane domain. Based on trypsin proteolysis, reverse-phase high-performance liquid chromatography and electrospray ionization mass spectrometry analysis, it is proposed that one of the sites of photolabeling is the peptide lys-phe-lys (590-592). FAzNPPB is a successful polyfluoro aryl azide photoaffinity labeling agent which may be of further use in studying the diverse effects of arylanthranilates on biological membranes.

Affinity Labels↗

Effect of infrared and visible light on 2-azidoanthraquinone in the QA binding site of photosynthetic reaction centres. An unusual mode of activation of a photoaffinity label.

Quinone-depleted reaction centres of Rhodobacter sphaeroides were reconstituted with 2-azidoanthraquinone and irradiated with short (50 ms) pulses of intense infrared (lambda = 850 +/- 50 nm) or visible light (460 less than lambda less than 630 nm). The irradiations brought about the rapid degradation of the protein-bound photoaffinity label even though it does not absorb light in either spectral region. The decomposition of the label was accompanied by a covalent modification of subunit M and by a loss of photochemical activity of the reaction centre protein (as measured by the light-induced electron transfer onto the primary acceptor, QA). In the case of the photolysis with IR light, these effects were triggered by the reduction of the protein-bound quinone (QA) to the semiquinone (Q-A) in the process of primary charge separation. The resulting reactive species showed properties of both a semiquinone and a triplet nitrene. Efficiency and specificity of the covalent incorporation were markedly improved when visible rather than IR light was used for the photolysis, presumably, because the triplet nitrene resulting from the primary charge separation was further activated in a second light-dependent reaction. The results suggest that, in conventional photoaffinity labeling experiments, the efficiency and specificity of the covalent incorporation of an aryl azide photolabel into a target protein may be improved when the photolysis is carried out with a combination of UV and intense visible light, rather than with UV light alone.

Affinity Labels↗

Recycling of photoaffinity-labeled insulin receptors in rat adipocytes. Dissociation of insulin-receptor complexes is not required for receptor recycling.

We have used an iodinated, photoreactive analog of insulin, 125I-B2(2-nitro-4-azidophenylacetyl)-des-PheB1-insulin, to covalently label insulin receptors on the cell surface of isolated rat adipocytes. Following internalization of the labeled insulin-receptor complexes at 37 degrees C, we measured the rate and extent of recycling of these complexes using trypsin to distinguish receptors on the cell surface from those inside the cell. The return of internalized photoaffinity-labeled receptors to the cell surface was very rapid at 37 degrees C proceeding with an apparent t 1/2 of 6 min. About 95% of the labeled receptors present in the cell 20 min after the initiation of endocytosis returned to the cell surface by 40 min. Recycling was slower at 25 and 16 degrees C compared to 37 degrees C and essentially negligible at 12 degrees C or in the presence of energy depleters. Addition of excess unlabeled insulin had no effect on the recycling of photoaffinity-labeled insulin receptor complexes, whereas monensin, chloroquine, and Tris partially inhibited this process. These data indicate that dissociation of insulin from internalized receptors is not necessary for insulin receptor recycling. Furthermore, agents which have been shown to prevent vesicular acidification inhibit the recycling of insulin receptors by a mechanism other than prevention of ligand dissociation.

Adipose Tissue↗

Radioligand binding and photoaffinity labelling studies show a direct interaction of phenothiazines at 5-HT3 receptors.

The effects of a range of phenothiazines were examined on 5-hydroxytryptamine3 (5-HT3) receptors in membranes from NIE-115 neuroblastoma cells using radioligand binding. Chlorpromazine, fluphenazine, perphenazine, trifluoperazine and prochlorperazine inhibited specific binding of both the 5-HT3 receptor antagonist [3H]GR65630 and agonist [3H]meta-chlorophenylbiguanide (mCPBG), with Ki values ranging from 0.4 to 3.9 microM. The mode of action of chlorpromazine was further examined using photoaffinity labelling in the presence and absence of 5-HT. Saturation radioligand binding data with both [3H]GR65630 and [3H]mCPBG showed that photoaffinity labelling with chlorpromazine (1 microM) caused a decrease in the maximum number of binding sites observed (35% and 28% for agonist and antagonist, respectively). This decrease was not observed when the membranes were incubated in the presence of 5-HT. The results demonstrate a direct interaction of a range of phenothiazines at the 5-HT3 receptor binding site.

Affinity Labels↗

Photoaffinity labeling of parathyroid hormone receptors: comparison of receptors across species and target tissues and after desensitization to hormone.

Cells derived from human giant cell tumors of bone and fibroblasts derived from human neonatal foreskin respond to parathyroid hormone (PTH) by increasing the intracellular and extracellular levels of adenosine cyclic 3',5'-phosphate (cAMP). Using photoaffinity labeling methods, we examined these cells for the presence of a PTH receptor or a binding subunit of a receptor complex. A previously designed biologically active and photolabile radioligand analogue of PTH was reacted with these intact cells. After photolysis, the cells were extracted, and the proteins were denatured, reduced, and separated by electrophoresis on sodium dodecyl sulfate (Na-DodSO4)-polyacrylamide gels followed by autoradiography. A single membrane component, Mr 70 000, was labeled specifically in intact cells cultured from skeletal and dermal tissue. By mixing, in pairs, photolabeled proteins from (a) intact human cells derived from giant cell tumors of bone, (b) intact human fibroblasts, and (c) canine renal cortical membranes, the receptors (or their binding subunits) for PTH were compared directly and found to be identical in terms of molecular size (as determined by the migration position on NaDod-SO4-polyacrylamide gels) across species (dog and human) and target tissue (bone, skin, and kidney). Preincubation of cells cultured from giant cell tumors of bone with PTH resulted in loss of the PTH-induced cAMP response (desensitization). Preincubation with PTH was accompanied by a marked decrease in photoaffinity labeling of the PTH binding component and suggests that the loss of hormone response in cells preincubated with PTH was related to a decrease in the number or availability of PTH receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

Affinity Labels↗

Photoaffinity labeling of human placental monoamine oxidase-A by 4-fluoro-3-nitrophenyl azide.

Our previous work has shown that low concentrations of 4-fluoro-3-nitrophenyl azide (FNPA) (0.01-1 microM) photodependently inhibited only the type B monoamine oxidase in rat brain [Biochem. Pharmacol. 34:781-785 (1985)]. Evidence is presented in this paper indicating that higher concentrations of FNPA (15 microM) photodependently inhibit type A monoamine oxidase (MAO-A) from human placenta. FNPA acted as a competitive inhibitor for human placental MAO-A in the dark (Ki = 10 microM) when [14C]serotonin was used as the substrate. The inhibition of MAO-A activity by FNPA was concentration dependent and also irradiation time dependent. The specificity of the photodependent incorporation of FNPA to MAO-A was shown by the protective effect of serotonin during the irradiation. The kinetic analysis showed that the Vmax was decreased whereas the Km was not changed after FNPA was photolyzed with MAO-A. Furthermore, there was no recovery of MAO-A activity upon washing of the photolyzed FNPA-enzyme mixture. These results suggest that FNPA may be covalently bound to the substrate-binding site. Thus, under the present experimental conditions, FNPA is a suitable photoaffinity labeling probe for human placental MAO-A. This is the first photoaffinity label for MAO-A, which may be useful for characterizing the substrate-binding site of this enzyme.

Affinity Labels↗

Photoaffinity labeling of the aglycon binding site of the recombinant human liver UDP-glucuronosyltransferase UGT1A6 with 7-azido-4-methylcoumarin.

7-Azido-4-methylcoumarin (AzMC) is a fluorescent photoactive compound structurally related to 4-methylumbelliferone (4-MU), a marker substrate of the human liver recombinant UDP-glucuronosyltransferase (UGT) 1A6. AzMC was synthesized and utilized to label the substrate binding site of UGT1A6. AzMC exhibits a fluorescence spectrum with maximum excitation and emission wavelengths of 380 and 442 nm, respectively. Upon irradiation, the probe irreversibly inhibited glucuronidation activity measured with para-nitrophenol (pNP) as substrate and interacted with UGT1A6 according to a saturable process indicative of reversible binding before covalent incorporation of the photoaffinity label. This inhibition was both time and concentration dependent and led to the calculation of an inhibition constant, k(2) = 0.113 mM min(-1), and dissociation constant, K(d) = 2.89 mM, for the reaction. Partial photoinactivation of UGT1A6 with AzMC revealed that the probe decreased the apparent V(max) of the pNP glucuronidation reaction, but not the K(m). Moreover, inhibition was partially prevented by 1-naphthol, a surrogate substrate for the enzyme, or by preincubation with an active-site directed inhibitor, 5'-O-[[(2-decanoylamino-3-phenyl-propyloxycarbonyl)amino]-su lfonyl]-2 ',3'-O-isopropylideneuridine. In contrast, UDP-glucuronic acid (UDP-GlcUA) did not have any protective effect against photoinactivation and AzMC did not affect the photoaffinity labeling of UGT1A6 by 5-[beta-(32)P]N(3)UDP-GlcUA, a photoaffinity analog of UDP-GlcUA. Additionally, in the absence of irradiation, AzMC was found to be a competitive inhibitor of 4MU glucuronidation. Collectively, these results strongly indicate that AzMC specifically binds to the UGT1A6 aglycon binding site. Amino acid alignment of phenol-binding proteins revealed a conserved motif, YXXXKXXPXP. It is possible that this motif is involved in phenol binding to UGT1A6 and other phenol-accepting proteins.

Affinity Labels↗

Intrinsic photoaffinity labeling probes for cholecystokinin (CCK)-gastrin family receptors. D-Tyr-Gly-[Nle28,31,pNO2-Phe33)CCK-26-33).

Attempts to biochemically characterize the pancreatic cholecystokinin (CCK) receptor by affinity labeling have utilized either 125I-Bolton-Hunter-CCK-33 ("long" probes) or decapeptide analogues of the carboxyl terminus of CCK ("short" probes), and covalent attachment via the amino-terminal regions of these probes. The long probe has identified a protein of Mr = 80,000 while "shorter" probes, which have their site of cross-linking closer to the receptor binding region of the probes, have labeled a distinct protein of Mr = 85,000-95,000. To extend and complement these observations, we have designed and synthesized a new probe for the CCK receptor which incorporates a photolabile p-nitrophenylalanine moiety within the theoretical receptor-binding region of the hormone, as its carboxyl-terminal residue. This "intrinsic" photoaffinity labeling probe has been shown to possess full biological activity, with potency and efficacy in stimulating amylase secretion by dispersed rat pancreatic acini similar to that of CCK-8 (CCK-26-33). When iodinated oxidatively, this probe binds rapidly, in a temperature-dependent, reversible, saturable, specific, high affinity manner to enriched pancreatic plasma membranes. In this work, we have used this probe to specifically label the CCK binding site on rat pancreatic plasma membranes. The Mr = 85,000-95,000 protein previously identified with amino-terminal cross-linking of short probes appears to be the protein labeled with this reagent as well. This provides strong evidence that this pancreatic plasma membrane protein contains the CCK-binding domain of the CCK receptor. This intrinsic photoaffinity labeling probe should be quite useful for the characterization of the active site of this receptor and for other CCK and gastrin receptors in many species.

Affinity Labels↗

Photoaffinity labeling on magnetic microspheres (PALMm) methodology for topographic mapping: preparation of PALMm reagents and demonstration of biochemical relevance.

Photoaffinity labeling (PAL) is a technique widely used for identifying the binding-site within proteins. Although the classic method is both versatile and powerful, it suffers significant disadvantages, such as the need to radiolabel the PAL ligand, and the need to conduct highly complicated separations of both the labeled protein and the labeled peptides derived from it. Here, we propose a novel and universal methodology--Photo-Affinity Labeling on Magnetic microspheres (PALMm) designed to simplify and shorten the PAL protocol. In this context, we describe the preparation of PALMm reagents and the evaluation of their biochemical relevance regarding two ATP-binding enzymes: hexokinase and apyrase.

Apyrase↗

Synthesis and biological activities of photoaffinity labeling analogues of substance P.

Substance P (Arg-Pro-Lys-Pro-Gln-Gln-Phe-Phe-Gly-Leu-MetNH2, SP) is an undecapeptide with important properties as a neurotransmitter and with other functions. No specific antagonists and no long-acting analogues of this peptide hormone are known to date. In order to reach these goals, analogues of SP have been prepared which contain potential affinity, as well as photoaffinity labeling functions, suitable for irreversible attachment to SP receptors. We report here the synthesis of SP analogues which have the Phe residues in positions 7 or 8 replaced with (4'-NO2)Phe, (4'-NH2)Phe, (4'-N2+)Phe, and (4'-N3)Phe. Some of these peptides are used for photoaffinity labeling studies using various bioassays. The synthesis of the (NO2)Phe-containing peptide was carried out on solid phase using Nle instead of Met and the Boc strategy up to residue 4; the remaining amino acids were added using an Fmoc strategy. The protected undecapetide was cleaved by ammonolysis, purified by chromatography on silica gel with chloroform/methanol and deprotected afterwards. The amino, diazonium, and azido peptides were obtained in this sequence by chemical modification of the nitro peptides. On guinea pig ileum the modified peptides in position 8 had close to maximal activity, whereas modifications in position 7 produced some reduced activity, especially the nitro modification. No diazonium peptide produced any irreversible effects on guinea pig ileum. Photoinactivation studies were carried out on strips of guniea pig trachea, but no irreversible effects have been observed, neither permanent stimulation nor permanent inactivation. The biological activities and effects are discussed in view of the molecular properties of the synthesized analogues.

Affinity Labels↗

Photoaffinity labelling of a receptor structure for macrophage cytotoxicity inducing factor (MCF).

Monocyte cytotoxicity inducing factor (MCF) is a cytokine derived from CD4+ lymphocytes which was isolated using its ability to cause human blood monocytes to become cytotoxic for tumour targets. An N-terminal derived biologically active peptide (GAAVLEDSQ) of the intact molecule was previously used to demonstrate a single class of high affinity binding sites on human blood monocytes and U937 cells. Photoaffinity labelling was carried out to identify the receptor. The N-terminal nonapeptide fragment (P2) could be cross-linked to a single molecular species on the surface of U937 cells when cross-linking was performed on intact cells. Under fully reducing conditions, this molecule had an average molecular weight of 58 kD. In contrast, the apparent molecular weight when determined under nonreducing conditions was 158-163 kD. Octylglucoside solubilized U937 membranes were then applied to a P2 ligand affinity column. The major protein peak when eluted had an apparent molecular weight of 73 kD when determined by a 12% SDS PAGE gel. Photoaffinity labelling of the ligand affinity product was carried out in solution. Gel electrophoresis under nonreducing conditions demonstrated cross-linking to a 163 kD and a 29 kD protein, while under reducing and denaturing conditions additional species were seen at 97 kD, 67 kD and 50 kD. Photoaffinity cross-linking performed both on whole cells and partially purified receptor in solution, and could be specifically abolished by the addition of unlabelled peptide. These data present evidence that the single high affinity binding site corresponds to a U937 membrane protein having an average molecular weight of 58 kD which exists as an apparent homodimer under native conditions, but may have additional low molecular weight components which were not available for binding and derivatization using intact cells.

Affinity Labels↗

Photoaffinity labeling studies of the human recombinant UDP-glucuronosyltransferase, UGT1*6, with 5-azido-UDP-glucuronic acid.

Recombinant human liver UDP-glucuronosyltransferase (UGT), UGT1*6, which catalyzes the glucuronidation of small phenols, previously expressed in a V79 cell line (1) was photolabeled with [beta-32P]5N3UDP-glucuronic acid ([beta-32P]5N3UDP-GlcUA). Two polypeptides with an approximate molecular weight of 54 kDa were extensively photolabeled in the recombinant cell line while the nontransfected cell line showed no photoincorporation in this area. The identity of the two polypeptides as UGTs, which correspond to two different glycosylation forms of the same enzyme, was confirmed by Western blot using a polyclonal monospecific antibody directed against the 120 amino acids of the N-terminal end of UGT1*6. Preincubation with UDP-glucuronic acid (UDP-GlcUA) inhibited the photoincorporation of the probe into the polypeptides indicating competition of both the photoprobe and the nucleotide-sugar for the same binding site. It was further shown that photoincorporation of [beta-32P]5N3UDP-GlcUA into the UDP-GlcUA-binding site was saturable. The lack of photoincorporation of a related photoprobe, [beta-32P]5N3UDP-glucose ([beta-32P]5N3UDP-Glc), into UGT1*6 demonstrated specificity of this enzyme for UDP-GlcUA. In enzymatic assays, unlabeled 5N3UDP-GlcUA was shown to be an effective cosubstrate of the glucuronidation of 4-nitrophenol catalyzed by UGT1*6. The studies were further extended by demonstrating that photolabeling of UGT1*6 was inhibited by several active site-directed inhibitors. Finally, photoaffinity labelling was used in the purification of the labeled UGT1*6 using preparative gel electrophoresis. In conclusion, we have demonstrated that photoaffinity labeling with [beta-32P]5N3UDP-GlcUA is an effective tool for the characterization of enzymes such as recombinant UGTs that use UDP-GlcUA.

Affinity Labels↗

Photoaffinity labeling of the guinea pig pulmonary mast cell beta-adrenergic receptor.

Beta-adrenergic agonists can prevent mediator release from guinea pig pulmonary mast cells. By pharmacologic characterization, this response is mediated through a beta-2 receptor. Structural characterization of this receptor on the lung mast cell, however, has been limited by methods for isolation of this pulmonary cell. In this study, the guinea pig lung mast cell was isolated to greater than 90% purity, and its beta-adrenergic receptor identified by photoaffinity labeling with [125I]iodoazidobenzylpindolol (125IABP) and separation of membrane proteins by SDS-PAGE. We found the guinea pig pulmonary mast cell beta-adrenergic receptor to electrophorese as a heterogeneous protein between 68 and 116 kD. Photoaffinity labeling with 125IABP was protectable by alprenolol and isoproterenol but not by phentolamine and norepinephrine. Using subtype-selective compounds, the pulmonary mast cell receptor was established to be of a beta-2 subtype. This is the first report of the structural identification of a lung mast cell beta-adrenergic receptor and the first report of a beta-adrenergic receptor of approximately 100 kD in mass. This mast cell receptor is considerably larger than the 65 kD beta-adrenergic receptors that have been identified in whole lung and other tissues. Data we have obtained using Northern blot analysis of mast cell RNA suggest a protein message of 45 kD for this beta-adrenergic receptor and a high degree of glycosylation most likely accounts for the large molecular size observed.

Affinity Labels↗

Development of a high affinity and stereoselective photoaffinity label for the D-1 dopamine receptor: synthesis and resolution of 7-[125I]iodo-8-hydroxy-3-methyl-1-(4'-azidophenyl)-2,3,4,5-tetrahydro- 1H-3-benzazepine.

In an earlier paper, we reported the development of (+-)-7-iodo-8-hydroxy-3-methyl-1-(4'-azidophenyl)-2,3,4,5-tetrahydro- 1H-3-benzazepine (I-MAB) and its 125I analogue ([125I]I-MAB) as selective, high affinity photoaffinity labels for the D-1 dopamine receptor. In this report, we now describe the complete synthesis and resolution of I-MAB and the pharmacological characterization of the stereoisomers in canine striatal membranes. R-(+)-I-MAB showed highly specific dopamine D-1 receptor binding (KD = 0.28 nM) and binds selectively and stereoselectively to the D-1 receptor. These results further confirm the previous suggestion that, in the benzazepine series of DA agonists and antagonists, the activity principally resides in the R-(+) enantiomer, the S-(-) enantiomer being considerably less potent or inactive. Moreover, R-(+)-[125I]I-MAB, upon photolysis, identifies the ligand-binding subunits of the neuronal D-1 receptor, with an apparent Mr of 74,000, 62,000, and 51,000 as assessed by autoradiography following sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Photoincorporation of R-(+)-[125I]I-MAB into these polypeptides was stereoselectively blocked by D-1 dopaminergic ligands with an appropriate pharmacologic profile for the receptor. R-(+)-[125I]I-MAB should thus prove to be a useful stereoselective photoaffinity label for the further characterization of the D-1 receptors.

Affinity Labels↗

Photoaffinity labeling of the cap-binding protein complex with ATP/dATP. Differential labeling of free eukaryotic initiation factor 4A and the eukaryotic initiation factor 4A component of the cap-binding protein complex with [alpha-32P]ATP/dATP.

It has been suggested that the cap-binding protein complex is involved in ATP-mediated melting of 5'-mRNA secondary structure to facilitate ribosome binding during initiation of translation in eukaryotic cells (Edery, I., Lee, K. A. W., and Sonenberg, N. (1984) Biochemistry 23, 2456-2462). Consequently, we have studied the interaction of dATP/ATP with the eukaryotic cap-binding protein complex by UV photoaffinity labeling. UV irradiation of the cap-binding protein complex in the presence of [alpha-32P]dATP/ATP resulted in the cross-linking of this compound to the 50-kDa polypeptide of the complex. This polypeptide is almost identical to the previously characterized eukaryotic initiation factor (eIF) 4A. We examined the ability of dATP/ATP to cross-link to eIF-4A and found that it cross-links less efficiently (approximately 60-fold on a molar basis) compared to the cross-linking obtained for the eIF-4A component of the cap-binding protein complex. Irradiation of purified eIF-4A together with the cap-binding protein complex in the presence of [alpha-32P]dATP resulted in greater than additive labeling of the eIF-4A component of the cap-binding protein complex and purified eIF-4A, suggesting a synergistic interaction between purified eIF-4A, the cap-binding protein complex, and dATP/ATP. We also report that photoaffinity labeling of eIF-4A and the eIF-4A component in the cap-binding protein complex is stimulated by eIF-4B, but not by other initiation factors or mRNA.

Adenosine Triphosphate↗