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Immunologically distinct isoforms of ecto-5'-nucleotidase in nerve terminals of different areas of the rat hippocampus.

Ecto-5'-nucleotidase is regarded as being the key enzyme in the formation of the neuromodulator adenosine from released ATP. However, the association of ecto-5'-nucleotidase with nerve terminals is not consensual. Only enzyme histochemical and biochemical studies, but not immunocytochemical studies, agree on a general synaptic location of the enzyme. To clarify this issue further we tested the effect of an antibody against ecto-5'-nucleotidase, previously used in immunocytochemical studies, on the activity of ecto-5'-nucleotidase in fractions of nerve terminals isolated from different areas of rat hippocampus. The specific activity of extracellular AMP catabolism was higher in synaptosomes from the CA3 area (0.81+/-0.06 nmol/min/mg of protein) than from synaptosomes from the CA1 area or the dentate gyrus or from the whole hippocampus (0.49-0.68 nmol/ min/mg of protein). The catabolism of AMP (10 microM) was equally inhibited (85-92%) in synaptosomes from whole hippocampus, CA1, CA3, or dentate gyrus by alpha,beta-methylene-ADP (100 microM) and equally unaffected by p-nitrophenyl phosphate (0.5 mM) or rabbit IgGs (100 microg/ml). However, the antiserum against ecto-5'-nucleotidase (100 microg/ml) inhibited extracellular AMP catabolism by 44% in CA3 synaptosomes but had little or no effect in synaptosomes from CA1, dentate gyrus, or whole hippocampus. A similar difference in the inhibitory potential of the antibody was observed between fractions of isolated 5'-nucleotidase binding to concanavalin A-Sepharose (70%) and fractions not retained by the lectin column (18%). Taken together, these results suggest that immunological isoforms of ecto-5'-nucleotidase exist in the rat hippocampal nerve terminals, with predominance in the CA3 area.

5'-Nucleotidase↗

5'-Nucleotidase activity indicates sites of synaptic plasticity and reactive synaptogenesis in the human brain.

The localization and morphological assessment of plastic or newly formed synapses in the human brain remains difficult due to the lack of specific markers. The ectoenzyme 5'-nucleotidase may represent a useful marker of these structures, since in adult rodents synaptic 5'-nucleotidase activity is restricted to sites of spontaneous synaptic turnover and induced reactive synaptogenesis. However, it is unclear to what extent synaptic 5'-nucleotidase activity occurs in the normal human brain, and whether reactive synaptogenesis, as seen e.g. in temporal lobe epilepsy (TLE), is associated with this ectoenzyme. Therefore, we have investigated the histochemical distribution of 5'-nucleotidase in hippocampal control specimens (n = 3) and in the hippocampus of TLE patients (n = 13). In controls, 5'-nucleotidase activity was present in the dentate gyrus molecular layer (DG-ML) and the mossy fiber termination field within the CA4 and CA3 subfields. Compared with controls, TLE specimens revealed markedly increased 5'-nucleotidase labeling in the DG-ML, implying TLE-associated reactive synaptogenesis in this hippocampal region. In contrast to GAP-43, synaptophysin, and dynorphin A, synaptic 5'-nucleotidase activity may serve as a potential specific indicator of plastic synapses or newly formed terminals in the human brain and prove useful for the study of diseases involving aberrant sprouting or altered synaptic plasticity.

5'-Nucleotidase↗

Infarct size-limiting effect of ischemic preconditioning is blunted by inhibition of 5'-nucleotidase activity and attenuation of adenosine release.

BACKGROUND: We have previously reported that ischemic preconditioning increases 5'-nucleotidase activity and adenosine release during ischemia and reperfusion. However, its direct cause-and-effect relation has not been proven. To test the idea that the infarct size-limiting effect of ischemic preconditioning is blunted by inhibition of ectosolic 5'-nucleotidase activity, we assessed 5'-nucleotidase activity, adenosine release, and infarct size caused by sustained ischemia with and without an exposure to alpha,beta,-methylene adenosine 5'-diphosphate (AOPCP) in the ischemia-preconditioned myocardium. METHODS AND RESULTS: In 67 open-chest dogs, the left anterior descending coronary artery was cannulated and perfused with an extracorporeal bypass tube from the carotid artery. After hemodynamic stabilization, the coronary artery was occluded four times for 5 minutes separated by 5 minutes of reperfusion (ischemic preconditioning, n = 10). After this procedure, the coronary artery was occluded for 90 minutes followed by 6 hours of reperfusion. Infarct size normalized by the risk area was smaller than the control group (n = 8, 41.0 +/- 2.6% versus 6.8 +/- 1.9%), although there were no significant differences in the endomyocardial collateral flow measured at 80 minutes of ischemia (8.5 +/- 1.1 versus 9.4 +/- 1.0 mL/100 g per minute). Ectosolic and cytosolic 5'-nucleotidase activity and adenosine release were increased during reperfusion in the ischemic preconditioning group compared with the control group, and the activity of ectosolic 5'-nucleotidase was markedly reduced by AOPCP (n = 10). AOPCP affected neither adenosine-induced coronary vasodilation nor increases in myocardial oxygen consumption during an intracoronary infusion of isoproterenol (n = 10). To test whether the increase in 5'-nucleotidase activity decreases infarct size, we infused AOPCP 10 minutes before the ischemic preconditioning procedure and continued for 60 minutes after the onset of reperfusion (n = 8). AOPCP blunted the infarct size-limiting effect (infarct size, 38.8 +/- 4.9%). AOPCP without ischemic preconditioning did not increase infarct size (n = 9). Furthermore, when AOPCP was infused during the ischemic preconditioning procedure (n = 6) or during 60 minutes of reperfusion (n = 6), the infarct size-limiting effect was partially blunted (infarct size, 21.3 +/- 2.5% and 19.5 +/- 2.4%, respectively). CONCLUSIONS: Increases in ectosolic 5'-nucleotidase activity and adenosine release are primarily responsible for the infarct size-limiting effect of ischemic preconditioning. Exposures to adenosine during the ischemic preconditioning procedure and enhanced release of adenosine during reperfusion synergistically contribute to the infarct size-limiting effects.

5'-Nucleotidase↗

Enhanced activity of pyrimidine 5'-nucleotidase in rat red blood cells during erythropoiesis.

A nucleotidase that catalyzed selective hydrolysis of pyrimidine 5'-nucleotides was investigated in rat red blood cells (RBCs). The enzyme had similar catalytic properties to human pyrimidine 5'-nucleotidase I (P5N-I). The P5N-I deficiency was known to be closely correlated with the human inherited disease, non-spherocytic hemolytic anemia. Similar to the human P5N-I, the rat enzyme preferentially hydrolyzed 5'-(d)CMP and 5'-UMP but no reactivity was observed with any 3'-nucleotide. Molecular mass of the enzyme was estimated to be approximately 38 kDa by gel filtration and SDS-polyacrylamide gel electrophoresis. Another subclass of pyrimidine 5'-nucleotidase, P5N-II, was also present in rat RBCs. This P5N-II-like enzyme, which resembled a 5'(3')-nucleotidase, preferentially hydrolyzed both 5'- and 3'- of (d)TMP or (d)UMP, but no cytosine nucleotide was hydrolyzed by the enzyme. Results from the reactivity with the antibody against rat 5'(3')-nucleotidase and estimated subunit molecular mass of the enzymes, about 26 kDa, suggested that the P5N-II-like enzyme had a similar structure to the 5'(3')-nucleotidase. The P5N-I-like activity in rat RBCs increased 5 to 6-fold at 4 days after phenylhydrazine injection, and reached a maximum at 6 to 7 days. No change in the activity of P5N-II-like nucleotidase was observed during the experimental period. The increase in rat P5N-I activity coincided with maturation of the erythrocytes.

5'-Nucleotidase↗

Effect of dopamine on ecto-5'-nucleotidase expression in human glomerular mesangial cells.

Ecto-5'-nucleotidase (5'-ribonucleotide phosphohydrolase, EC 3.1.3.5) of mesangial cells may be the main source of adenosine within the glomerulus, and thus essential in the regulation of glomerular microcirculation. c-AMP and c-AMP-stimulating agents were found to induce ecto-5'-nucleotidase of mesangial cells. Dopamine is a catecholamine known to increase c-AMP levels in mesangial cells. We have studied the effect of dopamine on ecto-5'-nucleotidase expression and DNA synthesis of glomerular mesangial cells in culture. Human mesangial cells were exposed to dopamine in the concentration range from 0.1 microM- to 1 mM, for 6-72 h. Ecto-5'-nucleotidase activity of human mesangial cells increased from 118.6 +/- 7.7 to 171 +/- 12 nmol/min/mg in a 72 h culture. This effect was time- and dose-dependent. Cycloheximide, an inhibitor of protein synthesis did not modify basal 5'-nucleotidase activity but it suppressed the stimulatory effect of 10 microM dopamine. DNA synthesis of human mesangial cells, studied after exposure of these cells to the same concentrations of dopamine used in the 5'-nucleotidase stimulation, was inhibited, being also dose dependent. These results indicate that dopamine induces ecto-5'-nucleotidase and inhibits DNA synthesis of cultured human mesangial cells. This action of dopamine on glomerular mesangial cells may be important in the regulation of glomerular hemodynamics.

5'-Nucleotidase↗

Cardiac 5'-nucleotidase activity increases with age and inversely relates to recovery from ischemia.

The metabolic basis for the enhanced tolerance of immature hearts to ischemia remains to be elucidated. Loss of high-energy phosphate nucleotides occurs during ischemia/reperfusion in mature (adult) hearts through the breakdown of adenosine triphosphate, diphosphate, and monophosphate (nondiffusible) to adenosine (freely diffusible). However, previous work has shown that after ischemia nondiffusible nucleotides are better retained by immature (neonatal) hearts than by mature hearts. The enzyme responsible for the conversion of adenosine monophosphate to adenosine is 5'-nucleotidase. We therefore hypothesized lower activity of this enzyme in neonatal than in adult myocardium. The purposes of this study were (1) to document 5'-nucleotidase activities in neonatal and adult rabbit myocardium and (2) to correlate differences of 5'-nucleotidase activity with functional recovery from ischemia. Neonatal (5- to 10-day-old) and adult (4- to 6-month-old) rabbit hearts were isolated and perfused (retrograde Langendorff). A left ventricular balloon measured functional parameters. Hearts were subjected to 20 minutes of global 37 degrees C ischemia and 10 minutes of reperfusion followed by freeze clamping. Tissue homogenates were assayed for 5'-nucleotidase by the linked formation of nicotinamide-adenine dinucleotide at 340 nm (Arkesteijn method). Postischemic recovery of developed pressure was 86% +/- 3% in neonates (n = 5) versus 38% +/- 3% in adults (n = 8) (mean +/- standard deviation) (p less than 0.01). 5'-Nucleotidase activity was 4400 +/- 1208 nmol/min/gm in neonates (n = 5) versus 13,938 +/- 830 nmol/min/gm in adults (n = 8) (mean +/- standard deviation) (p less than 0.01). We conclude that (1) 5'-nucleotidase activity is 68% lower in neonatal than in adult myocardium and (2) functional recovery after ischemia inversely relates to 5'-nucleotidase activity.

5'-Nucleotidase↗

[Cytochemical detection of lymphocyte 5'-nucleotidase in chronic lymphatic leukemia].

5'-Nucleotidase is a degrading purine ectoenzyme acting at alkaline pH. It is located in both B and T lymphocytes and its study is of interest in chronic lymphoproliferative diseases. The present work compiles the cytochemical study of lymphocyte 5'-nucleotidase in a control group consisting of 277 haematologically normal subjects and a series of 77 chronic lymphocytic leukaemia (CLL) patients; phenotypic studies had been carried out in 40 of these last. The results were expressed as percentage of 5'-nucleotidase positive lymphocytes, and the value (means +/- SD) for the control group was 25 +/- 7, that of the CLL group being 10.7 +/- 18.12. Increased lymphocyte 5'-nucleotidase was present in a minority of the cases (13%), but the significance of this finding is unknown and unrelated to any clinical or cytomorphological data. Although lacking any statistical value, those B-CLL lymphocytes expressing surface IgM and IgD (thus being more mature cells) showed higher 5'-nucleotidase values than those cells expressing only IgM. This finding suggests that a given lymphocytic population would be more immature the lower 5'-nucleotidase value it may express. The incorporation of 5'-nucleotidase determination into the cytochemical study of CLL is encouraged as it is frequently decreased in this disease; at the same time, the enzyme may provide some information on the maturity of the leukaemic population involved.

5'-Nucleotidase↗

Induction of ecto-5'-nucleotidase of rat cultured mesangial cells by interleukin-1 beta and tumour necrosis factor-alpha.

Because ecto-5'-nucleotidase activity of rat glomerular mesangial cells has been shown to increase upon interaction with macrophages in vitro, it was examined whether interleukin-1 beta (IL-1 beta) and tumour necrosis factor-alpha (TNF-alpha), two macrophage-released cytokines, were responsible for this effect. IL-1 beta and TNF-alpha stimulated mesangial cell 5'-nucleotidase activity in a dose-dependent manner after treatment for 24 hr. Maximum increases reached 4.5 times and 1.7 times basal values for IL-1 beta (20 U/ml) and TNF-alpha (25 ng/ml), respectively. The effects of both cytokines were additive. Stimulation of 5'-nucleotidase by IL-1 beta and TNF-alpha was specific since the activity of other ectoenzymes, such as Mg2(+)-ATPase, was unchanged. Cycloheximide, a blocker of protein synthesis, suppressed the cytokine-dependent increase of 5'-nucleotidase activity. Cyclo-oxygenase inhibitors such as indomethacin and ibuprofen inhibited approximately 50% of the effects of both cytokines. Their inhibitory effect was abolished in the presence of prostaglandin E2 (PGE2). In addition, PGE2 itself produced a dose-related (0.1-10 microM) increase of 5'-nucleotidase activity with a maximum of 2.2 times basal value. Taken together, these results indicate that IL-1 beta, essentially, and TNF-alpha, to a lesser extent, regulate 5'-nucleotidase expression in the plasma membrane of cultured mesangial cells and that their effect depends in part on PGE2 synthesis. Therefore, macrophages, via their products of secretion acting on 5'-nucleotidase, could modulate adenosine production in the glomerular capillaries.

5'-Nucleotidase↗

Changes in enzyme activities of thymidine kinase and 5'-nucleotidase for dTMP during hormonal regeneration of seminal vesicles of mice.

An increase of thymidine kinase [EC 2.7.1.21] activity and decrease of 5'-nucleotidase [EC 3.1.3.5] activity for dTMP were found during hormonal regeneration of the seminal vesicles by daily or single administration of testosterone propionate into mice castrated 2 weeks previously. Actinomycin D injected on day 0 of testosterone treatment completely inhibited both the increase of thymidine kinase and the decrease of 5'-nucleotidase. When injected on day 2, actinomycin D decreased thymidine kinase activity below the control level and 5'nucleotidase activity was not restored to the normal level. The activity of 5'-nucelotidase in a mixed sample, in which seminal vesicles of castrated mice and those of testosterone-treated mice were homogenized together, was intermediate between the activities determined separately. This indicates the absence of any inhibitor of 5'nucleotidase in the regenerating vesicles. Changes in total activity of 5'nucleotidase and total protein content in extracts during various treatments showed that the decrease in specific activity of 5'-nucleotidase in the first 2 days of testosterone treatment was not due to inhibition of enzyme activity but to dilution of the enzyme with other proteins which increased in content more rapidly than 5'-nucleotidase.

Animals↗

A calcium channel blocker activates both ecto-5(')-nucleotidase and NO synthase in HUVEC.

Since amlodipine, a long-acting Ca channel blocker, increases both NO and adenosine production in canine hearts, we investigated that amlodipine activates both ecto-5(')-nucleotidase responsible for adenosine production and NO synthase (NOS) for NO production in human umbilical venous endothelial cells (HUVECs), and its cellular signaling. We measured activities of ecto-5(')-nucleotidase and NOS in HUVECs in the condition with additions of xanthine (100 microM)+xanthine oxidase (1.6 x 10(-3)U/ml) in the presence or absence of amlodipine (1 x 10(-9)-1 x 10(-6)M). Amlodipine increased both ecto-5(')-nucleotidase and NOS activities. Xanthine+xanthine oxidase deactivated both NOS and ecto-5(')-nucleotidase, and amlodipine increased both activities of NOS and ecto-5(')-nucleotidase by 117+/-33% and 48+/-6%, respectively. Amlodipine phosphorylated p38MAP kinase and that an inhibitor of p38MAP kinase inhibited the amlodipine-induced activation of both NOS and ecto-5(')-nucleotidase. Furthermore, amlodipine increased both adenosine and NO production in the canine ischemic hearts. We concluded that amlodipine activates both NOS and ecto-5(')-nucleotidase via p38MAP kinase in vitro and enhances both NO and adenosine production in vivo.

Amlodipine↗

Multiple ecto-nucleotidases in PC12 cells: identification and cellular distribution after heterologous expression.

The physiological action of extracellular ATP and other nucleotides in the nervous system is controlled by surface-located enzymes (ecto-nucleotidases) of which several families with partially overlapping substrate specificities exist. In order to identify ecto-nucleotidases potentially associated with neural cells, we chose PC12 cells for analysis. PC12 cells revealed surface-located ATPase and ADPase activity with apparent K(m)-values of 283 microM and 243 microM, respectively. Using PCR we identified the mRNA of all members of the ecto-nucleoside triphosphate diphosphohydrolase family investigated (NTPDase1 to NTPDase3, NTPDase5/6), of ecto-nucleotide pyrophosphatase/phosphodiesterase3 (NPP3), tissue-non-specific alkaline phosphatase and ecto-5'-nucleotidase. The surface-located catalytic activity differed greatly between the various enzyme species. Our data suggest that hydrolysis of ATP and ADP is mainly due to members of the ecto-nucleoside triphosphate diphosphohydrolase family. Activity of ecto-5'-nucleotidase and alkaline phosphatase was very low and activity of NPP3 was absent. For a detailed analysis of the cellular distribution of ecto-nucleotidases single and double transfections of PC12 cells were performed, followed by fluorescence analysis. Ecto-nucleotidases were distributed over the entire cell surface and accumulated intracellularly in varicosities and neurite tips. PC12 cell ecto-nucleotidases are likely to play an important role in terminating autocrine functions of released nucleotides and in producing extracellular nucleosides supporting the survival and neuritic differentiation of PC12 cells.

Adenosine Diphosphate↗

Evaluation of 5'-nucleotidase as an enzyme marker in ovarian carcinoma.

A plasma membrane ectoenzyme in mammalian cells, 5'-nucleotidase, was evaluated as a marker for ovarian carcinoma. Activities of this enzyme were determined in homogenates from normal (N = 17) and malignant ovaries (N = 17), as well as in the sera from control women (N = 35), ovarian cancer patients with active disease (N = 24), and those in clinical remission (N = 9). A significant reduction of the activity of 5'-nucleotidase was observed in tumor homogenates compared with homogenates from normal ovaries. Levels of this enzyme in the sera of ovarian cancer patients were higher than in control women, suggesting the possibility of shedding of this enzyme from the tumor cell surface to the systemic circulation of the host. The diagnostic value of serum 5'-necleotidase levels was compared with another enzyme marker for ovarian carcinoma, viz. serum glycoprotein:galactosyltransferase. The upper limit of normal was set at 2 SD higher than the normal mean. Elevation of serum 5'-nucleotidase was observed in 12/24 (50%) patients with active disease, and 1/9 (11%) patients with clinical remission. In contrast, serum glycoprotein:galactosyltransferase was elevated in all the serum samples from patients with active disease and in none of those with clinical remission. There was some correlation between the serum levels of 5'-nucleotidase and those of glycoprotein:galactosyltransferase (0.01 less than P less than 0.05). Elevation of 5'-nucleotidase in the serum of these patients was not due to liver metastasis. Serum 5'-nucleotidase levels seem to correlate with disease status in some ovarian carcinoma patients, but in general it is inferior to serum glycoprotein:galactosyltransferase as a tumor marker.

5'-Nucleotidase↗

Recycling of 5'-nucleotidase in a rat hepatoma cell line.

Intracellular movement of cell surface 5'-nucleotidase was studied in H4S cells, a rat hepatoma cell line. Surface labelled cells were incubated for various periods at 37 degrees C and treated with neuraminidase at 0 degrees C. Removal of sialic acid residues from glycoproteins results in a change of their isoelectric points. Analysis with isoelectric focusing was then used to distinguish between cell surface and intracellular 5'-nucleotidase. Incubation of 125I-surface-labelled cells at 37 degrees C resulted in a gradual decrease of labelled 5'-nucleotidase at the plasma membrane until, at 60 to 90 min, a steady state was reached with 52% of the label on the cell surface and 48% intracellular. Pretreatment of the cells with the weak base primaquine had no influence on this distribution while at the same time uptake of iron via the transferrin receptor was inhibited. Using immunoelectron microscopy 5'-nucleotidase was found on the cell surface, in multivesicular endosomes and the Golgi complex. Preincubation of the cells in the presence of cycloheximide caused a reduction of labelling in the Golgi complex, whereas the label in the other compartments was retained. These results lead to the conclusion that 5'-nucleotidase does not recycle through the Golgi complex and that in contrast to the transferrin receptor the recycling of 5'-nucleotidase is not inhibited by primaquine.

5'-Nucleotidase↗

Light and electron microscopical immunocytochemistry of 5'-nucleotidase in rat cerebellum.

5'-Nucleotidase in nervous tissue has so far not been localised at the ultrastructural level using immunocytochemical techniques. We have now applied monoclonal antibodies and a polyclonal antiserum raised against this ecto-enzyme and describe the distribution of 5'-nucleotidase antigenicity in rat cerebellum both at the light and electron microscopic levels. Within all cerebellar layers, 5'-nucleotidase immunoreactivity was found on plasma membranes of glial elements, i.e. Bergmann glial cell processes crossing the molecular layer, astrocytic end-feet around blood vessels and glial cell extensions surrounding single Purkinje cells. In the granular layer, 5'-nucleotidase immunoreactivity was present on glial membranes interposed between granule cells. Neuronal cells or processes were devoid of immunoreactivity. The immunocytochemical results were compared with conventional 5'-nucleotidase histochemistry. Both techniques showed the same ecto-localisation of the enzyme and favour the view of 5'-nucleotidase being predominantly situated at glial plasma membranes.

5'-Nucleotidase↗

Properties of cytosol 5'-nucleotidase and its role in purine nucleotide metabolism.

5'-Nucleotidase which was found first in chicken liver and found to be located in cytosol was purified and characterized. This enzyme is termed cytosol 5'-nucleotidase for convenience. Some properties of this enzyme are summarized in Table 7. (Table: see text) The specific activity of cytosol 5'-nucleotidase in chicken liver cytosol is higher than that in rat liver cytosol. In response to a high protein diet the activity of cytosol 5'-nucleotidase in chicken liver increased, concurrently with those of purine nucleoside phosphorylase and xanthine dehydrogenase. Of the three enzymes, the activity of cytosol 5'-nucleotidase reached a maximum most rapidly. In rat liver, the activities of these three enzymes did not increase on administration of a high protein diet. From these results the principal physiological function of the cytosol 5'-nucleotidase is assumed to be dephosphorylation of IMP as the first step in the pathway of uric acid formation from IMP, which is important in the elimination of nitrogen of amino acids and proteins in a uricotelic animal. An allosteric property of this enzyme is considered to be important for control of adenine and guanine nucleotide pools, especially in connection with the biosynthetic activity of the purine nucleotides in uricotelic animals.

5'-Nucleotidase↗

Evidence for distinct 5'- and 3'-nucleotidase activities in the surface membrane fraction of Leishmania donovani promastigotes.

A surface membrane fraction isolated from Leishmania donovani promastigotes contained distinct 5'- and 3'-nucleotidase activities. These were distinguished from each other, and from a previously described surface membrane nonspecific acid phosphomonoesterase, on the basis of several properties. The 5'- and 3'-nucleotidases had p' optima of 6.5 and 8.5, respectively. In contrast to the 3'-nucleotidase, the 5'-nucleotidase was inhibited by both ammonium molybdate and fluoride ions; the latter inducing a biphasic response. Neither divalent cations nor chelators affected the 5'-enzyme activity whereas the 3'-enzyme was inactivated by EDTA. This inactivation was fully reversed following removal of the chelator, either by resuspension of the membranes in EDTA free medium or by addition of certain divalent cations in excess; Co2+ being the most effective. The 5'-nucleotidase had activity with both ribo- and deoxyribonucleotide substrates, whereas the 3'-nucleotidase did not hydrolyse deoxyribonucleotides.

5'-Nucleotidase↗

Inhibition of smooth muscle 5'-nucleotidase by imidazole and its reversal by magnesium.

Imidazole, commonly used as an effective pH-buffering reagent in aqueous media maintained at pH 7-8, was found to depress the 5'-nucleotidase (5'-ribonucleotide phosphohydrolase, EC 3.1.3.5) activity of microsomal membrane fraction isolated from rat vas deferens smooth muscle in a dose-dependent manner in the absence of added Mg2+. Such an inhibitory effect of imidazole on the smooth muscle 5'-nucleotidase was not dependent upon the purity or integrity of the membrane fractions used and could be fully reversed by the inclusion of 5-10 mM Mg2+ in the assay medium. Of the five different pH-buffering reagents tested, imidazole was specific in exerting inhibitory effect on the 5'-nucleotidase in the absence of Mg2+ and this inhibition could not be accounted for by the impurities present in the imidazole. Differential effects of chelating reagents and other divalent metal ions on the 5'-nucleotidase activity were also observed in imidazole and Tris buffer solutions. The 5'-nucleotidase activity was not affected if the membranes were preincubated and washed with a large volume of 50 mM imidazole and subsequently assayed in 50 mM Tris in the absence of Mg2+. Similar findings were obtained with EDTA treated membrane. These results suggest that imidazole does not act by removal of the activating metal ion but rather interacts directly with 5'-nucleotidase and alters the metal-enzyme interactions.

5'-Nucleotidase↗

The interaction of 5'-nucleotidase purified from chicken gizzard and actin, and the reversible loss of the inhibitory capacity of actin on deoxyribonuclease I.

Evidence is presented for a direct interaction of the intrinsic membrane protein 5'-nucleotidase (5'-ribonucleotide phosphohydrolase, EC 3.1.3.5) purified from avian smooth muscle (chicken gizzard) and the cytoskeletal component actin. Two different modes of interaction can be discerned: firstly, an immediate inhibitory effect of preferentially filamentous actin (F-actin) on the enzymic (i.e., AMPase) activity of 5'-nucleotidase and a direct binding of this enzyme to immobilized F-actin. Since these effects are suppressed by the addition of myosin subfragment 1, binding of 5'-nucleotidase appears to occur along the F-actin filament axis. Secondly, a time- and 5'-nucleotidase concentration-dependent transformation of also preferentially F-actin into a form unable to inhibit the enzymic activity of deoxyribonuclease I (DNAase I). This desensitization of actin versus DNAase I is not due to a denaturation process and was found to be reversible after addition of ATP. Furthermore, it does not seem to effect the ability of actin to bind to DNAase I. The transformation is accompanied by the hydrolysis of actin-bound nucleotide into adenosine, which remains bound to actin. Therefore, the desensitization of actin versus DNAase I appears to be due to a nucleotide-dependent conformational change of actin. An unidentified contamination of the 5'-nucleotidase preparations to a varying degree with ADPase and ATPase activities appears to be responsible for the desensitization process, although a synergistic role of these activities and 5'-nucleotidase cannot be excluded.

5'-Nucleotidase↗