PubMed HealthSearch

PubMed · 1694776

Guanine nucleotides decrease the affinity of substance P binding to its receptor.

Abstract

The inhibitory effect of guanine nucleotides on the binding of 125I-Bolton-Hunter conjugated substance P (125I-BHSP) to rat submaxillary gland membranes has been confirmed and further explored. The evidence presented here indicates that this is due to a marked loss of binding affinity. In the presence of 5'-guanylyl imidodiphosphate (GppNHp) there is (1) a greater than or equal to 20-fold increase in the Kd as determined by Scatchard analysis and (2) the concentration of SP required to inhibit half of the 125I-BHSP binding (IC50) increased approximately 30-fold. Consistent with a marked decrease in affinity is an approximately 100-fold increase in the rate of dissociation of 125I-BHSP following addition of GppNHp. Complete restoration of high-affinity binding was achieved by removal of the guanine nucleotide.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

J Luber-Narod, N D Boyd, S E Leeman. 1990-04-25. Guanine nucleotides decrease the affinity of substance P binding to its receptor.. https://doi.org/10.1016/0922-4106(90)90001-e

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Recognition of G-U mismatches by tris(4,7-diphenyl-1,10-phenanthroline)rhodium(III).

The coordination complex tris(4,7-diphenyl-1,10-phenanthroline)rhodium(III) [Rh(DIP)3(3+)], which promotes RNA cleavage upon photoactivation, has been shown to target specifically guanine-uracil (G-U) mismatches in double-helical regions of folded RNAs. Photoactivated cleavage by Rh(DIP)3(3+) has been examined on a series of RNAs that contain G-U mismatches, yeast tRNA(Phe) and yeast tRNA(Asp), as well as on 5S rRNAs from Xenopus oocytes and Escherichia coli. In addition, a "microhelix" was synthesized, which consists of seven base pairs of the acceptor stem of yeast tRNA(Phe) connected by a six-nucleotide loop and contains a mismatch involving residues G4 and U69. A U4.G69 variant of this sequence was also constructed, and cleavage by Rh(DIP)3(3+) was examined. In each of these cases, specific cleavage is observed at the residue which lies to the 3'-side of the wobble-paired U; some cleavage by the rhodium complex is also evident in several structured RNA loops. The remarkable site selectivity for G-U mismatches within double-helical regions is attributed to shape-selective binding by the rhodium complex. This binding furthermore depends upon the orientation of the G-U mismatch, which produces different stacking interactions between the G-U base pair with the Watson-Crick base pair following it on the 5'-side of U compared to the Watson-Crick pair preceding it on the 3'-side of U. Rh(DIP)3(3+) therefore serves as a unique probe of G-U mismatches and may be useful both as a model and in probing RNA-protein interactions as well as in identifying G-U mismatches within double-helical regions of folded RNAs.

Guanine Nucleotides

Analysis of rate constants governing the exchange of guanine nucleotides bound to EF-Tu catalysed by EF-Ts.

The kinetics of the heterologous exchange of GDP bound to EF-Tu by free GTP catalysed by EF-Ts have been analysed with a view to correlating results obtainable with different computational procedures. The affinity of EF-Ts for EF-Tu.GTP was found to be somewhat less than previously proposed by Romero et al. (Biochemistry 260, 6167:1985) though still greater than for EF-Tu.GDP. There is a close interrelationship between the constants for the binding of GTP to EF-Tu.EF-Ts and of EF-Ts to EF-Tu.GTP. The declining fractional rate of exchange observed by Romero et al. during displacement of GDP by GTP appears to be dependent on the ratio of the rate constants (k-1 + k-2)k4/k1k-2 as defined in the text, not on that of K4/K1 as they proposed.

Guanine Nucleotides