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1.
Two acid phosphomonoesterases, 5′(3′)-ribonucleotide phosphohydrolase and 3′-ribonucleotide phosphohydrolase, were isolated from Tradescantia albiflora leaf tissue and purified by ammonium sulphate precipitation, gel filtration on Sephadex G-200 and repeated chromatography on DEAE-cellulose. The enzymes differed in their sensitivity to dialysis against 1 mM EDTA; the activity of 5′(3′)-ribonucleotide phosphohydrolase was unaffected, while 3′-ribonucleotide phosphohydrolase showed an increase of 60–90%. Both enzymes were rapidly inactivated above 50°. Their ion sensitivity was identical: 1 m M Zn2+ and Fe2+ were inhibitors for both by 20–80%; while Mg2+, Ca2+, Co2+, K+, Na+ at 1–10 mM had no significant effect on the activity of either enzyme. Inorganic phosphate inhibited both enzymes almost completely. EDTA (1 mM) did not inhibit either enzyme; none of the divalent cations tested were enzyme activators. 3′-Ribonucleotide phosphohydrolase hydrolysed both 3′- and 5′-nucleoside monophosphates (3′-AMP, 3′-CMP, 3′-GMP, 3′-UMP, 5′-AMP, 5′-CMP, 5′-GMP, 5′-UMP). 5′(3′)-Ribonucleotide phosphohydrolase showed a preference for the 3′-nucleoside monophosphates. Adenosine 3′,5′-cyclic monophosphate, purine and pyrimidine 2′,3′-cyclic mononucleotides at 0.1–1.OmM did not inhibit the enzymes.  相似文献   

2.
A relatively guanine-specific endoribonuclease (RB-1) was isolated from rice bran. The pH optimum was 8.5 using yeast RNA as a substrate. The enzyme activity was inhibited by Cu2+, Zn2+, DTT and SDS, while EDTA, PCMB, IAA and heparin had no effect on the activity. The enzymic activity of RB-1 was inhibited by 3′-GMP as an end-product inhibitor. The enzyme protein was highly heat-stable. RB-1 did not hydrolyze native calf thymus DNA, heat-denatured DNA, poly A, poly U and poly C. Among synthetic substrates, only poly I was depolymerized. Only 2′,3′-cyclic GMP was identified in the hydrolysate of yeast RNA after 6hr hydrolysis.  相似文献   

3.
J A Walmsley  B L Sagan 《Biopolymers》1986,25(11):2149-2172
1H- and 31P-nmr spectroscopy have been used to investigate the self-association of M2(5′-CMP) [M = Li+, Na+, K+, Rb+, or (CH3)4 N+; 5′-CMP = cytidine 5′-monophosphate], the self-association of Li2(5′-GMP) (5′-GMP = guanosine 5′-monophosphate), and the heteroassociation of 5′-GMP and 5′-CMP (1 : 1 mole ratio) in aqueous solution as a function of the nature of the monovalent cation. Proton spectral differences for the different 5′-CMP salts exhibit a cation-size dependence and have been ascribed to a change in the stacking geometry. An average stacking association constant of 0.63 ± 0.24M?1 at 1°C, consistent with the weak stacking interactions of the cytosine bases, was determined for the 5′-CMP salts. Heteroassociation of 5′-GMP and 5′-CMP follows the reverse of the cation order for the formation of ordered aggregates of 5′-GMP. Heteroassociation occurs in the presence of Li+, Na+, and Rb+ ions, but only self-association occurs for the K+ nucleotides. Li2(5′-GMP), which does not form ordered species, self-associates to form disordered base stacks with a stacking constant of 1.63 ± 0.11M?1 at 1°C.  相似文献   

4.
《Phytochemistry》1986,25(7):1545-1551
The extraction, partial purification and properties of a 3′,5′-cyclic nucleotide phosphodiesterase from lettuce cotyledons is described. Purification involved fractional precipation with (NH4)2SO4, chromatography on Sephadex G-200, affinity chromatography on Affi-Gel Blue and non-denaturing polyacrylamide gel electrophoresis. The behaviour of the final enzyme preparation on SDS-polyacrylamide gel electrophoresis was examined and inidcated an M, of ca 62 000. The enzyme from 3′,5′-cyclic nucleotide phosphodiesterases previously isolated from plant tissues in that it exhibits activity towards pyrimidine as well as purine cyclic nucleotides. Furthermore, it hydrolyses cyclic CMP at a comparable rate to that with which it hydrolyses cyclic AMP and cyclic GMP. Both 3′- and 5′-AMP were released, with the 5′-nucleotide being the major product. Whereas the Km with all three substrates remained constant during the purification procedure, Vmax with cyclic AMP was lower than that for cyclic CMP but increased as purification proceeded. The effects were examined of a range of di- and trivalent metal ions on the enzyme activity. Fe3+ significantly stimulated the activity, more so when cyclic GMP was the substrate. Cu2+ inhibited the activity.  相似文献   

5.
Cyclic nucleotide phosphodiesterase was extracted from intact chloroplasts and partially purified. Peak 1c activity from Sephadex G-200 was resolved by electrophoresis into two major bands (MWs 1.87 × 105 and 3.7 × 105). Both also possessed acid phosphatase, ribonuclease, nucleotidase and ATPase. The chloroplast peak 1c cyclic nueleotide phosphodiesterase was located in the envelope. Peak 1m cyclic nucleotide phosphodiesterase obtained from the microsomal fraction had a MW of 2.63 × 105. Electrophoresis separated 1m into two bands of cyclic nucleotide phosphodiesterase activity (MWs 2.63 × 105 and 1.28 × 105). Both contain ATPase, ribonuclease, nucleotidase, but not acid phosphatase. Peak 1c has high activity towards 3′:5′-cyclic AMP and 3′:5′-cyclic GMP but little towards 2′:3′-cyclic nucleotides. Peak 1m showed most activity towards 2′:3′-cyclic AMP, 2′:3′-cyclic GMP and 2′:3′-cyclic CMP with little activity towards 3′:5′-cyclic nucleotides. With 1c, 3′:5′-cyclic AMP and 3′:5′-cyclic GMP exhibit mixed-type inhibition towards one another. The 2′:3′-cyclic AMP phosphodiesterase 1m was competitively inhibited by 2′:3′-cyclic GMP. p-Chloromercuribenzoate inhibits 1c but not 1m. Electrophoresis after dissociation indicates that 1c and 1m are both enzyme complexes. After dissociation, the 1c complex but not that of 1m could be reassociated. The ribonuclease of the 1m complex hydrolyses RNA to yield 2′:3′-cyclic nucleotides as the main products. These results are compatible with the 1c cyclic nucleotide phosphodiesterase complex being involved in the metabolism of 3′:5′-cyclic AMP, and the 1m complex being concerned with RNA catabolism.  相似文献   

6.
The acid-soluble nucleotides were extracted from the tubers of Jerusalem artichoke with percbloric acid, and separated and purified by means of adsorption on and elution from active charcoal, repeated chromatography on columns of Dowex I (Cl-), followed by paper chromatography. The following nucleotides have been characterized and/or identified: 5′-AMP, 3′-AMP, ADP, ATP, 5′-GMP, 2′-GMP, 3′-GMP, 2′,3′-cyclic GMP, GDP, GTP, 5′-UMP, UDP, UTP, NADP, UDP-glucose, UDP-galactose, UDP-fructose, UDP-N-acetylhexosamine and GDP-mannose.** Neither cytosine ribonucleotides nor deoxyribonucleotides have been detected. The significance of these observations is discussed.  相似文献   

7.
An enzyme that catalyzed the deamination of adenosine 3′-phenylphosphonate was purified from squid liver to homogeneity as judged by SDS-PAGE. The molecular weight of the enzyme was estimated to be 60,000 by SDS-PAGE and 140,000 by Sephadex G-150 gel filtration. The enzyme deaminated adenosine, 2′-deoxyadenosine, 3′-AMP, and 2′,3′-cyclic AMP, but not adenine, 5′-AMP, 3′,5′-cyclic AMP, ADP, or ATP. The apparent Km and Vmax at pH 4.0 for these substrates were comparable (0.11-0.34mM and 179-295 μmol min?1 mg?1, respectively). The enzyme had maximum activity at pH 3.5-4.0 for adenosine 3′-phenylphosphonate, at pH 5.5 for adenosine and 2′-deoxyadenosine, and at pH 4.0 for 2′,3′-cyclic AMP and 3′-AMP when the compounds were at concentration of 0.1 mM. The Km at 4.0 and 5.5 for each substrate varied, but the Vmax were invariant. These results indicated that the squid enzyme was a novel adenosine (phosphate) deaminase with a unique substrate specificity.  相似文献   

8.
Infrared spectra of neutral aqueous solutions of nucleoside 3′,5′-cyclic monophosphates indicate an increase in the antisymmetric phosphoryl stretching frequency to 1236 cm?1 from 1215 cm?1 in trimethylene cyclic phosphates. A further increase to 1242 cm?1 accompanies esterification of the 2′-ribose hydroxyl. The O2′-esterified and 2′-deoxy cyclic nucleotides examined display both reduced kinase binding and altered phosphoryl stretching frequencies, suggesting that modification of the phosphate ring represents a common feature in decreased kinase activation. Reversible inhibition of mitosis in thymidine-synchronized human lymphocytes by 2 mmN6,O2′-dibutyryladenosine 3′,5′-cyclic monophosphate and N6-monobutyryladenosine 3′,5′-cyclic monophosphate was observed. However, adenosine 3′,5′-cyclic monophosphate, O2′-monobutyryladenosine 3′,5′-cyclic monophosphate, butyric acid, and ethyl butyrate had no effect on mitosis when present at 2 mm concentrations during S and G2. These results are consistent with hydrolysis of O2′-monobutyryladenosine 3′,5′-cyclic monophosphate and adenosine 3′,5′-cyclic monophosphate by esterase and phosphodiesterase enzymes and suggest that modification of the N6 amino group is necessary for the antimitotic activity of N6,O2′-dibutyryladenosine 3′, 5′-cyclic monophosphate.  相似文献   

9.
《Experimental mycology》1984,8(4):334-341
The ascomyceteSaccobolus platensis Gamundi´& Ranalli requires light to produce apothecia. It has now been found that this light requirement can be satisfied by a 24-h pulse of white light at certain stages of the sexual cycle. The addition of exogenousN6,O2′-dibutyryl adenosine 3′,5′-cyclic monophosphate (db-cyclic AMP) to the dark growing mycelia could replace rather efficiently the inductory effect of light; cyclic AMP,N6-monobutyryl cyclic AMP, andO2′-monobutyryl cyclic AMP were less effective, while guanosine 3′,5′-cyclic monophosphate (cyclic GMP) was a very weak inducer. An inducing effect similar to that of db-cyclic AMP was obtained by the addition of 3-isobutyl-1-methylxanthine (MIX) or theophylline to cultures developing in darkness. In the presence of theophylline, endogenous cyclic AMP levels of dark-grown mycelia were several fold higher than those of control cultures. The cyclic AMP content of mycelia growing under different light regimes was measured and no significant differences were observed. However, cultures submitted to white light showed an increase in adenylate cyclase (ATP pyrophosphate-lyase (cyclizing), EC 4.6.1.1) and a decrease in cyclic AMP phosphodiesterase (3′,5′-cyclic AMP 5′-nucleotidohydrolase, EC 3.1.4.17) specific activities compared with the activities of dark-grown mycelia. The cyclic AMP phosphodiesterase activity was strongly inhibited by theophylline and by MIX. The possible role of cyclic AMP in the induction of apothecia in this species is discussed.  相似文献   

10.
A procedure was developed for the detection of 2′,3′-cyclic nucleotide 3′-phosphohydrolase in myelin. This assay was sufficiently sensitive to detect the low levels of 2′,3′-cyclic nucleotide 3′-phosphohydrolase in human erythrocytes. The 2′,3′-cyclic nucleotide 3′-phosphohydrolase of human erythrocytes was determined to be exclusively associated with the inner (cytosolic) side of the membrane. Leaky ghostsand resealed ghosts were assayed for 2′,3′-cyclic nucleotide 3′-phosphohydrolase, (Ca2+/Mg2+-ATPase, and acetylcholinesterase activity, and the 2′,3′-cyclic nucleotide 3′-phosphohydrolase profile is the same as that of the (Ca2+/Mg2+)-ATPase, an established inner membrane maker.  相似文献   

11.
Cyclic 3′,5′-AMP and cyclic 3′,5′-GMP injected into large neurons of the snail Helix lucorum altered neuron activity. The effect of cAMP is usually depolarizing and that of cGMP hyperpolarizing. The results are specific for 3′,5′-cyclic nucleotides. The experiments support the hypothesis that reaction-diffusion processes involving cyclic nucleotides from the basis of an intraneuronal system of information processing.  相似文献   

12.
An unidentified substance(s) in a commercial guanosine 3′,5′-cyclic monophosphoric acid (cyclic 3′,5′-GMP) preparation is effective in attracting the aggregating amoebae of the cellular slime mold, Polysphondylium pallidum. Bacterial extracts (Escherichia coli) and amoeba extracts (P. pallidum) attract both vegetative and aggregating amoebae. A crude enzyme preparation from amoebae is capable of reducing the chemotactic activity of the extracts on aggregating amoebae and eliminating the activity of the unknown substance in the commercial cyclic 3′,5′-GMP preparation. As only the extracts were shown to contain folic acid, and since the enzyme does not reduce folic acid activity, it is suggested that the extracts contain a factor (possibly folic acid) primarily active on vegetative amoebae and an acrasin. The commercial cyclic 3′,5′-GMP preparation contains only an acrasin. The acrasin is heat stable and nondialyzable.  相似文献   

13.
Livers from fed male rats were perfused in vitro with O2′-monobutyryl guanosine 3′,5′-cyclic monophosphate. The output of triglyceride was reduced, while output of ketone bodies and glucose was stimulated by 10?4M monobutyryl guanosine 3′,5′-cyclic monophosphate. No effect was observed with 10?5 M nucleotide. Monobutyryl guanosine 3′,5′-cyclic monophosphate did not affect uptake of free fatty acids. In these respects, monobutyryl guanosine 3′,5′-cyclic monophosphate mimics the effects of dibutyryl adenosine 3′,5′-cyclic monophosphate, although the guanylic nucleotide seems to be less potent than the adenosine 3′,5′-cyclic monophosphate derivative.  相似文献   

14.
A general procedure is described for the two-step chemical synthesis from [32P]orthophosphoric acid of the eight common ribo- and deoxyribonucleoside 3′,5′-cyclic monophosphates. The method is simple and reliable and both steps are carried out in the same reaction flask without an intermediate purification step. 32P-labelled cyclic nucleotides are obtained after paper chromatography in yields of 20–60% relative to starting [32P]orthophosphoric acid and with a specific activity of greater than 1 mCi/μmole. Alternative methods for the purification of reaction mixtures and for the preparation of 32P-labelled 3′,5′-cyclic AMP and 3,′,5′-cyclic GMP are described.  相似文献   

15.
β-Cyclodextrin is examined as a potentially useful probe of nucleic acid structure. From circular dichroism (CD) data the binding constant and the enthalpy and entropy of binding to 5′-AMP are determined. The CD spectrum of the bound complex is calculated. The binding to 5′-dAMP, 3′,5′-cyclic AMP, adenosine and adenine is also examined. No evidence is seen for the involvement of hydrophobic forces. CD data for 5′-UMP, and 5′-CMP in 0.01 M β-cyclodextrin show that the binding is not as specific as previously reported.  相似文献   

16.
Several naturally-occurring lipids but not n-propanol, guanidine-HCl or a variety of synthetic detergents stimulate the 3′,5′-cyclic AMP-phosphodiesterase activities of a supernatant fraction of brain at 1.25 × 10?7 M cAMP. The time courses of the reaction are linear in the presence and absence of lipid. On the other hand, lipid has different effects on various phosphodiesterase activities in fractions obtained after gel filtration of the crude extract. It stimulates the phosphodiesterase activities measured at 1.25 × 10?7 M and 10?4 M 3′,5′-cyclic-AMP and 1.25 × 10?7 M 3′,5′-cyclic GMP in two of the fractions partially retained in the gel. However, lipid has little effect on the enzymatic hydrolysis of low concentrations of cAMP or cGMP and markedly inhibits the hydrolysis of high concentrations of cAMP by the fraction excluded from the gel.  相似文献   

17.
The regulation of acid phosphatase synthesis by various phosphate compounds was examined in Baker’s yeast protoplasts. Synthesis was repressed by inorganic phosphate and phosphomonoesters. Phosphomonoesters were hydrolysed by a small amount of non-specific acid phosphatase present in the protoplast membrane. The inorganic phosphate that was liberated and incorporated into protoplasts probably repressed acid phosphatase synthesis. Phosphodiesters, such as 3′, 5′-cyclic AMP, 3′, 5′-cyclic CMP and 3′, 5′-cyclic GMP, promoted acid phosphatase synthesis. The effect of 3′, 5′-cyclic AMP was not to overcome hexose repression, because high hexose did not repress acid phosphatase synthesis. 3′, 5′-cyclic AMP did not overcome repression of the enzyme synthesis by inorganic phosphate. From these observations 3′, 5′-cyclic nucleotides probably had some effect on the yeast acid phosphatase-synthesizing system but the exact role of the nucleotides is obscure.  相似文献   

18.
This paper deals with the specificity of the anti 3′,5′-cyclic AMP antibodies which can be obtained with 2′-O-succinyl cyclic AMP-albumin as an immunogen. The binding of the hapten and its analogs was measured by equilibrium dialysis. Rat and rabbit antibodies were compared. In both cases the best ligands for the anti-hapten antibodies are 2′-O-acylated derivatives of cyclic AMP: the dissociation constants are below 10?10m. Cyclic AMP itself and its 6 N, 2′-O-diacylated derivatives are recognized less efficiently; their dissociation constants lie around 10?8m, similar to that of natural cyclic AMP binding proteins. Other nucleotides lacking either adenine or the 3′,5′-phosphate ring are not recognized. Three different populations of antibodies were detected by a more detailed analysis of the equilibrium curves.  相似文献   

19.
Flagellation and β-galactosidase activity were repressed in electron transport-deficient mutants of Escherichia coli K-12. The repressed state was alleviated upon restoring respiration capacity or in the presence of added 3′,5′-cyclic AMP. The repressed/derepressed states observed with varying respiration rates were due to modulation of the intracellular 3′,5′-cyclic AMP content effected by respective changes in the activity of adenylate cyclase as a function of respiration rate.  相似文献   

20.
(i) Three forms of cyclic AMP phosphodiesterases (3′,5′-cyclic AMP 5′-nucleotidohydrolase, EC 3.1.4.17), F1, F2-I and F2-II, were partially purified from the soluble fraction of rat pancreas in the presence of excess protease inhibitors by DEAE-cellulose column chromatography and gel filtration and were characterized. (ii) F2-II, which was purified 31-fold, exhibited a single peak of activity on both polyacrylamide-gel electrophoresis and isoelectric focusing. The enzyme had a molecular weight of about 70,000, an isoelectric point of 3.9, and an optimal pH around 8.5 and required Mg2+ or Mn2+ but not Ca2+ for activity. The Km values of this enzyme for cyclic AMP and cyclic GMP were 1 and 50 μm, respectively, while V values of this enzyme for cyclic AMP and cyclic GMP were 36.1 and 12.6 nmol min?1 (mg of protein)?1, respectively. Cyclic GMP competitively inhibited hydrolysis of cyclic AMP by this enzyme. Ro20-1724 [4-(3-butoxy-4-methoxybenzyl)-2-imidazolidinone] also inhibited hydrolysis of cyclic AMP competitively, with a Ki value of 1 μm. (iii) Fraction F1, which was purified 10-fold, had a molecular weight of more than 500,000 and required Mg2+ for activity. Its Km values for cyclic AMP were 1 and 5 μm. Its Km value for cyclic GMP was 45 μm. Fraction F2-I, which was purified 26-fold, had a molecular weight of about 70,000. The ratio of the initial velocity of hydrolysis of cyclic GMP to that of cyclic AMP was 0.5 at a substrate concentration of 1 μm.  相似文献   

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