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Y Fraenkel

Publications and source records attributed to Y Fraenkel.

5 recordsLinked to original sources

Acetylcholine interactions with tryptophan-184 of the alpha-subunit of the nicotinic acetylcholine receptor revealed by transferred nuclear Overhauser effect.

Acetylcholine interactions with three genetically engineered fusion proteins containing peptides from the nicotinic acetylcholine receptor were studied by 1D and 2D nuclear magnetic resonance methods. The three proteins were Torpedo alpha 184-200, Torpedo alpha 186-198, and human alpha 183-204 of the acetylcholine receptor fused to the first 323 residues of the E. coli protein trpE. Nuclear Overhauser effect studies revealed interactions of bound acetylcholine with tryptophan-184 present in the Torpedo alpha 184-200, and the human alpha 183-204 sequences. These interactions are between the N(CH3)3+ and CH3 groups of acetylcholine with the aromatic protons of tryptophan. The appearance of these cross-peaks indicates a distance of less than 5 A between tryptophan and the bound ligand; however, direct contact has yet to be proven.

Acetylcholine

Molecular dissection of cholinergic binding sites: how do snakes escape the effect of their own toxins?

Snakes have evolved a novel binding site demonstrating selective biorecognition. The snake nicotinic acetylcholine receptor is sensitive to acetylcholine while resistant to the effect of the lethal neurotoxins secreted in their own venom. By subjecting recombinant binding sites to point mutagenesis, biochemical analyses and NMR spectroscopy the binding characteristics of three cholinergic ligands have been measured. The amino acid residue at position 189 has been found to be of particular importance to toxin binding.

Amino Acid Sequence

Direct measurement of agonist binding to genetically engineered peptides of the acetylcholine receptor by selective T1 NMR relaxation.

Interactions of four ligands of the nicotinic acetylcholine receptor with genetically engineered peptides have been studied by NMR. A recombinant cholinergic binding site was prepared as a fusion protein between a truncated form of the bacterial protein trpE and a peptide corresponding to the sequence alpha 184-200 from the Torpedo californica receptor. This construct binds alpha-bungarotoxin while the trpE protein alone does not, and thus serves as a negative control [Aronheim, A., Eshel, Y., Mosckovitz, R., & Gershoni, J. M. (1988) J. Biol. Chem. 263, 9933-9937]. In this study agonist binding to alpha 184-200 is demonstrated by monitoring the T1 relaxation of the ligand's protons in the presence and absence of the recombinant binding site. This binding is specific as it can be competed with alpha-bungarotoxin. Quantitative analyses of such competitions yielded the concentration of binding sites, which corresponded to 3.3% and 16.5% of the total protein, for partially purified and affinity-purified alpha 184-200 constructs, respectively. The KD values for the binding of acetylcholine, nicotine, d-tubocurarine, and gallamine to the affinity-purified construct were 1.4, 1.4, 0.20, and 0.21 mM, respectively, while KD's with the nontoxin binding protein were all above 10 mM. Thus, this is a direct demonstration that the toxin binding domain alpha 184-200 may comprise a major component of the cholinergic agonist site.

Acetylcholine

NMR studies of recombinant active site peptides of the nicotinic acetylcholine receptor.

Interactions of ligands with recombinant cholinergic binding sites have been monitored by NMR. Monitoring the selective T1 relaxation of the protons of acetylcholine, nicotine, d-tubocurarine, and gallamine reveals specific binding to peptide constructs containing the alpha 183-204 or shorter sequences of the nicotinic acetylcholine receptor of Torpedo, Human, Chicken, Xenopus, Mouse, Calf, and Drosophila. The trend of the KD values of the different ligands shows that the binding of the low molecular weight agonists and antagonists is very weak to the Drosophila sequence which is different from the vertebrate sequences in the N and C terminals. Within the vertebrates, the antagonists d-tubocurarine and gallamine display a KD trend different from that of acetylcholine and alpha-bungarotoxin. Specificity of binding is proven by the fact that atropine, a muscarinic inhibitor, binds non-specifically. Temperature dependence indicates a fast exchange limit (T1 bound greater than tau bound) for gallamine bound to the Torpedo alpha 184-200 sequence. This limit should apply also for the other ligands which have weaker binding constants.

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