PubMed HealthSearch

SEARCH · PubMed Health

Results for “Inosine Monophosphate”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Enzymatic formation of inosine 3',5'-monophosphate and of 2'-deoxyguanosine 3',5'-monophosphate. Inosinate and deoxyguanylate cyclase activity.

Enzymes in particulate fractions from sea urchin sperm and in soluble fractions from rat lung were shown to catalyze the formation of inosine 3',5'-monophosphate (cyclic IMP) and of 2'-deoxyguanosine 3',5'-monophosphate (cyclic dGMP) from ITP and dGTP, respectively. With sea urchin sperm particulate fractions, Mn2+ was an essential metal cofactor for inosinate, deoxyguanylate, guanylate and adenylate cyclase activities. Heat-inactivation studies differentiated inosinate and deoxyguanylate cyclase activities from adenylate cyclase, but indicated an association of these activities with guanylate cyclase. Preincubation of sea urchin sperm particulate fractions with trypsin altered in a very similar manner guanylate, inosinate, and deoxyguanylate cyclase activities, and various metals and metal-nucleotide combinations protected the three cyclase activities to comparable degrees against trypsin. The relative guanylate, deoxyguanylate and inosinate cyclase activities at 0.1 mM nucleoside triphosphate were 1.0, 0.5 and 0.08, respectively. With these three cyclase activities, plots of reciprocal velocities against reciprocal Mn2+-nucleoside triphosphate concentrations were concave upward, suggesting positive homotropic effects. With rat lung soluble preparations, relative guanylate, deoxyguanylate, inosinate and adenylate cyclase activities at 0.09 mM nucleoside triphosphate were 1.0, 1.7, 0.1 and 0, respectively. MnGTP was a competitive inhibitor of deoxyguanylate cyclase activity (Ki equals 12.2 muM) and MndGTP was a competitive inhibitor of guanylate cyclase activity (Ki equals 16.2 muM). Inhibition studies using ITP were not conducted. When soluble fractions from rat lung were applied to Bio-Gel A 1.5 m columns, elution profiles of guanylate, deoxyguanylate and inosinate cyclase activities were similar. These results suggest that deoxyguanylate, guanylate and inosinate cyclase activities reside within the same protein molecule.

Adenosine Triphosphate

Alanosine toxicity in Novikoff rat hepatoma cells due to inhibition of the conversion of inosine monophosphate to adenosine monophosphate.

2-Amino-3-(hydroxynitrosoamino)propionic acid (alanosine), at a concentration as low as 2.7 muM, completely inhibits the incorporation of hypoxanthine into adenosine triphosphate by cultured Novikoff rat hepatoma cells. Alanosine inhibits the first step in the conversion of inosine monophosphate to adenosine monophosphate because inosine monophosphate, but not adenylosuccinate, accumulates in treated cells. However, the alanosine inhibition is not prevented by aspartic acid, even at a concentration of 1 mM. Alanosine treatment results in the inhibition of cell division, DNA synthesis, RNA and protein synthesis (in this order), and a depletion of the cells of adenosine triphosphate. Some of the cells accumulate in late G2 or M, but the remainder become arrested in other stages of the cell cycle. All effects are due to the inhibition of adenosine monophosphate synthesis and the consequent depletion of the adenosine triphosphate pool since they are completely prevented or reversed by addition of adenine, but not hypoxanthine, to the medium. Pyrimidine nucleotide synthesis is not significantly inhibited by alanosine, since the uridine triphosphate pool is not affected and uridine fails to reverse the cytotoxicity of alanosine. Alanosine also inhibits the transport of aspartic acid, but has a much lower affinity for this transport system than aspartic acid.

Adenine

Radical formation in single crystals of hypoxanthine.HCl.H2O, inosine, and the disodium salt of 5'-inosine-monophosphate.

Radical formation in single crystals of hypoxanthine.HCl.H2O, inosine and Na2-5'-IMP.(7.5 H2O) by X-irradiation has been studied using electron-spin-resonance spectroscopy at 9.5 and 35 GHz. In all crystals both H-addition radicals at position C2 and C8 of the purine ring are found. The coupling constants of these two radicals are different and depend strongly on the protonation state of the base. INDO-calculations indicate that the C8-radical is protonated at O6. In Na2-5'-IMP OH-addition radicals at position C2 of the purine ring are formed. Electron adduct radicals are found in the neutral and the N7-protonated base after X-irradiation at 77 K. In Na2-5'-IMP no electron adduct is formed but a radical which probably is the cation. In hypoxanthine.HCl.H2O a radical could be observed after X-irradiation at 77 K, which results from addition of a Cl- to the nitrogen N1.

Electron Spin Resonance Spectroscopy

High levels of inosine monophosphate in the erythrocytes of elasmobranchs.

The acid soluble organic phosphates of the erythrocytes of three species of elasmobranchs were assayed by chromatography on Dowex 1 anion exchange columns. Organic phosphates in the peaks eluted from these columns were identified by their ultraviolet absorption spectra and by further chromatography on paper. All three species are unusual amongst the vertebrates in that their erythrocytes contain high levels of inosine monophosphate (IMP). IMP has little effect on the oxygen affinity of the hemoglobins of the two species tested.

Animals

Studies on inosine monophosphate dehydrogenase. Isotope exchange at equilibrium.

Investigations on the mechanism of the IMP dehydrogenase (IMP: NAD+ oxidoreductase, EC 1.2.1.14) reactions have been made at pH 7.0 by measuring rates of isotope exchange at chemical equilibrium with K+ maintained at a constant concentration. The results are generally in accord with the conclusions reached on the basis of the steady-state kinetic data obtained previously and confirm that there is random addition of IMP and NAD to the enzyme. The data also indicate clearly that at pH 7.0 catalysis is faster than the rate of IMP and/or XMP release which is rate limiting for the reaction sequence. The binding of IMP to the enzyme at pH 8.1 has been demonstrated to occur in the absence of both K+ and NAD and id independent of the K+ concentration.

Carbon Radioisotopes

Studies on inosine monophosphate dehydrogenase. An associating-dissociating system.

The techniques of polyacrylamide gel electrophoresis, sedimentation velocity and frontal analysis on Sephadex have been used to demonstrate that preparations of IMP dehydrogenase (IMP: NAD+ oxidoreductase, EC 1.2.1.14) from Aerobacter aerogenes consist of a mixture of molecular weight isomers. Further, it has been shown that dissociation of the higher molecular weight forms is promoted by urea, sodium dodecyl sulphate and dithiothreitol. Under conditions comparable to those used for kinetic analyses, the enzyme has a molecular weight of about 86000 and this is the smallest active species that has been observed. In the absence of a reducing agent, the enzyme undergoes polymerization and is devoid of catalytic activity. From the amino acid composition and peptide map, it appears that the molecule with a molecular weight of 86000 is made up of two identical polypeptide chains.

Amino Acids

Studies on inosine monophosphate dehydrogenase. Steady state kinetics.

The reaction catalyzed by IMP dehydrogenase (IMP: NAD+ oxidoreductase EC 1.2.1.14) from Aerobacter aerogenes has been investigated kinetically at pH 8.1 as a three reactant system by means of steady-state velocity studies in the absence of products, as well as by inhibition studies using products and substrate analogues. The mechanism appears to be a partially random one in which IMP and K+ can bind randomly to the free enzyme while NAD does not react unless K+ or both K+ and IMP are present on the enzyme. While the steady-state velocity data can be analysed adequately on the basis that rapid equilibrium conditions apply, this is only an approximate description of the mechanism since product inhibition studies indicate that there is a significant concentration of an enzyme-XMP (enzyme-K-XMP) complex in the steady-state.

Enterobacter

Purification and specificity of antibodies to inosine 5'-monophosphate.

Antibodies to inosine 5'-monophosphate elicited in rabbits by immunization with a conjugate of IMP (oxidized with periodate) and bovine serum albumin have been purified by affinity chromatography. By the use of two affinity columns, Sepharose-IMP and Sepharose-oligo(I), the antibodies have been fractionated into three fractions. By gel diffusion, the three fractions were found to react with the conjugates of bovine serum albumin and IMP, GMP and AMP respectively. The association constants for the binding of the Fab fragments purified on the Sepharose-oligo(I) column and several haptens have been deduced from fluorescence experiments. It is shown that the base and the phosphate group play an important part in the binding of IMP to Fab fragments. No reaction has been found between the antibodies and poly(I).poly(C) by gel diffusion. However, the antibodies interact with poly(I).poly(C) since they decrease the thermal stability of poly(I).poly(C).

Animals

Inosine 5'-monophosphate dehydrogenase of Escherichia coli. Purification by affinity chromatography, subunit structure and inhibition by guanosine 5'-monophosphate.

Escherichia coli IMP dehydrogenase (EC 1.2.1.14) was purified by affinity chromatography on immobilized nucleotides. The enzyme binds to agarose-bound 8-(6-aminohexyl)-AMP, N6-(6-aminohexyl)-AMP and 8-(8-amino-octyl)-IMP but not to immobilized NAD+ or Cibacron Blue F3G-A. AMP proved to be an effective eluent. A large-scale purification scheme in which 8-(6-aminohexyl)-AMP-agarose was used resulted in a homogeneous preparation of IMP dehydrogenase. The enzyme was also purified by immunoprecipitation with monospecific antisera. Sodium dodecyl sulphate/polyacrylamide-gel electrophoresis, N-terminal amino acid analysis and tryptic 'finger-printing' demonstrated that IMP dehydrogenase comprises identical subunits of mol.wt. 58000. Trypsin and Pronase cleave the 58000-mol.wt. subunit into peptides of mol.wts. 42000 and 14000, with a concomitant decrease in enzyme activity. These observations rationalize much of the contradictory data on the subunit composition of the enzyme found in the literature. GMP appears to be a competitive inhibitor with respect to IMP, with no evidence for regulatory behaviour being found. The two purification procedures were also used to purify inactive mutant enzymes from guaB mutant strains of E. coli.

Adenosine Monophosphate

The crystal and molecular structure of the polymeric copper (II) complex of inosine 5'-monophosphate. A comparison with the previously reported zinc analogue.

X-ray analysis of [Cu . (5'-IMP) . H2O] has shown a structure containing polymeric chains of composition [Cu.5'-IMP]n in which the copper atom is directly bound to N(7) of the base and to three oxygen atoms of different phosphate groups. Whereas the coordination geometry in the analogous zinc complex resembles a distorted tetrahedrom, that in the copper complex is a distorted square plane with weak axial interactions.

Chemical Phenomena

Tryptaminergic mechanism participating in induction of vasoconstriction by adenine nucleotides, adenosine, IMP and inosine in the isolated and blood-perfused hindlimb preparation of the rat.

The isolated right hindlimb of the recipient rat was perfused at a constant flow rate through the femoral artery with heparinized blood from the carotid artery of a donor. The preparations were under a 99.0 +/- 0.8 mmHg of mean perfusion pressure (N = 63) and 3.3 +/- 0.1 ml/min of blood flow through the right femoral artery. The actions of adenosine, adenosine tri-, die- and monophosphate, inosine monophosphate and inosine on the femoral vascular bed were investigated, respectively. These substances injected into the femoral artery, with the exception of inosine, caused a dose-dependent vasoconstriction always preceded by a temporal vasodilatation. Inosine induced only a prompt vasoconstriction. The vasoconstrictor responses to these substances were diminished or reverted to vasodilator ones after repeated administrations and such were significantly prevented by pretreatment with either reserpine or methysergide. These results indicate that all the purines tested induce a vasoconstriction in the femoral vascular bed of the rat through a common (tryptaminergic) mechanism and that such seem to be potent releasers of 5-hydroxytryptamine from peripheral tryptaminergic storage sites.

Adenine Nucleotides

Human transfer factors: structural properties suggested by HPRP chromatography and enzymatic sensitivities.

Leukocyte extracts containing human transfer factor (TF) were fractionated by exclusion chromatography, and the active fraction (Sephadex G25, Fraction IIIa) was subjected to high pressure, reverse phase (HPRP) chromatography and enzymatic degradation. TF activity was assessed by the systemic transfer of dermal skin test reactivity from KLH-immunized donors to naive recipients. Preparative HPRP chromatography resolved Fraction IIIa into multiple chromophoric regions, two of which demonstrated transfer of KLH reactivity. Alkaline phosphatase treatment of Fraction IIIa converted the major ultraviolet-absorbing component, 5'-inosine monophosphate, to inosine and resulted in TF activity being restricted to one region. This HPRP region (R1A) contained less than 1% of the UV254 active material in Fraction IIIa but greater than 90% of the reactivity. The sensitivity of TF to pronase, proteinase K, phosphodiesterase I, and phosphodiesterase II was evaluated by inhibition of systemic transfer of KLH reactivity. Pronase and proteinase K destroyed systemic transfer activity and the pronase destruction could be inhibited with traysylol. Phosphodiesterase I, a 3' exonuclease, destroyed activity, whereas phosphodiesterase II, a 5' exonuclease, did not. The data are consistent with a phosphodiester-containing polypeptide in the structure of human TF for KLH reactivity.

Alkaline Phosphatase

Enzyme defect in primary gout.

The rate-limiting step in the degradation of adenine nucleotides in the liver is the conversion of adenosine monophosphate (A.M.P.) to inosine monophosphate by A.M.P. deaminase, which is normally 95% inhibited. When the inhibition is released, uric acid is formed in large excess, and the biosynthesis of purines is increased. We therefore propose that congenital hyperuricaemia is caused by the presence of an abnormal A.M.P. deaminase, which is less sensitive to its physiological inhibitors. Verification of the hypothesis depends upon the availability of liver tissue from patients with congenital hyperuricaemia for kinetic analysis of A.M.P. deaminase. A call for collaboration is addressed to the medical community.

AMP Deaminase