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1.
  • 1.1. A thermostable orthophosphoric monoester phosphohydrolase (EC 3.1.3.1) from Thermus sp strain Rt41A has been purified 400-fold to give a specific activity of 25 U/mg at 60°C in IM diethanolamine (pH 11.1).
  • 2.2. The enzyme has a Mr of 160,000 and is trimeric.
  • 3.3. The half-life of the enzyme is 5 min at 85°C.
  • 4.4. The enzyme has a wide specificity for a number of phosphate monoesters.
  • 5.5. The Hm of the enzyme is pH dependent, so the pH optimum of the enzyme is affected by the substrate concentration.
  • 6.6. The enzyme is inhibited 50% by 20 mM Ca2+ or Mg2+.
  • 7.7. The Ki for phosphate, EDTA-di sodium salt and arsenate (in 1 M diethanolamine, pH 11.1) is approx 1.2, 1.6 and 4mM respectively.
  • 8.8. Urea (200 mM) is not inhibitory.
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2.
  • 1.1. Isolated rat heart sarcolemma was treated with different concentrations of an ionic detergent, deoxycholate (DOC) and ATP hydrolysis in the presence of Ca2+ or Mg2+ was determined.
  • 2.2. Both Ca2+-dependent ATPase and Mg2+-dependent ATPase activities were decreased in the DOC-treated membranes; however, the depression of Mg2+-dependent ATPase activity was greater than that of Ca2+-dependent ATPase.
  • 3.3. The differential changes in Ca2+-dependent ATPase and Mg2+-dependent ATPase activities were apparent when incubations with DOC were carried out for different time intervals and at different temperatures.
  • 4.4. In DOC-treated preparations, the Km value for Ca2+-dependent ATPase was decreased whereas that for Mg2+-dependent ATPase was increased. The half maximal velocities of the Ca2+-dependent ATPase and Mg2+-dependent ATPase enzyme reactions in the treated preparations were obtained at a DOC: membrane protein ratio of 3.0 and 0.6, respectively.
  • 5.5. In the DOC-treated membranes exhibiting the half maximal velocities of enzyme reactions, the Ki value for Ca2+-dependent ATPase was drastically reduced but remained unchanged for Mg2+-dependent ATPase.
  • 6.6. The DOC treatment was associated with a loss of protein as well as phospholipids and resulted in changes in the ultrastructural integrity of the membrane.
  • 7.7. Varying degrees of decreases in the activities of sarcolemmal adenylate cyclase. (Na-K+)-ATPase. 5'-nucleotidase and calcium binding were seen upon DOC treatment.
  • 8.8. The extent of reduction in Ca2+-dependent ATPase and Mg2+-dependent ATPase activities were also different when the membrane was treated with a non-ionic detergent, Lubrol PX.
  • 9.9. These data suggest that Ca2+-dependent ATPase in heart sarcolemma is more resistant than Mg2+-dependent ATPase to detergent treatments and further indicate some differences in the properties of these enzymes.
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3.
  • 1.1. Parotid plasma membrane nonpump low-affinity Ca2+-ATPase, which possesses high-affinity (Ca2+ + Mg2+ )-ATPase activity, was characterized.
  • 2.2. Purified Ca2+-ATPase hydrolyzed the nucleoside triphosphates, GTP, ITP, CTP, UTP, TTP (67–93% of ATP) and nucleoside diphosphates, ADP. GDP, IDP, CDP, TDP (12–40% of ATP) but not AMP and p-NPP.
  • 3.3. The maximum activities of Ca2+- and (Ca2+ +Mg2+ )-ATPases were obtained in the presence of 1 mM and 0.13 μ M Ca2+, respectively.
  • 4.4. The Km values for Ca2+ in Ca2+- and (Ca2++ Mg2+ )-ATPases were 0.2 mM and 22 nM. respectively.
  • 5.5. The activities of both Ca2+- and (Ca2+ + Mg2+ )-ATPases were found in the right-side-out-vesicles obtained from the plasma membrane-rich fraction.
  • 6.6. These features suggest that Ca2+-ATPase is an ecto-Ca2+-dependent nucleoside triphosphatase.
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4.
  • 1.1. Anoxia exposure resulted in a stable modification of the kinetic properties of 6-phosphofructo-1-kinase (PFK) from the anterior byssus retractor muscle (ABRM) of the sea mussel Mytilus edulis L.
  • 2.2. Compared to the aerobic enzyme, the anoxic form of PFK. showed a reduced affinity for both substrates, fructose-6-phosphate (F6P) and ATP, and an increased sensitivity to inhibition by phosphoenolpyruvate.
  • 3.3. To analyze the involvement of protein kinases in the modification of PFK, extracts from aerobic or anoxic muscle were incubated with ATP and Mg2+ plus protein kinase second messengers cyclic 3',5'-adenosine monophosphate (cAMP), cyclic 3',5'-guanosine monophosphate (cGMP) or Ca2+ plus phorbol 12-myristate 13-acetate (PMA).
  • 4.4. Both forms of the enzyme responded to the presence of cAMP with a strong increase in affinity for F6P.
  • 5.5. In response to cGMP affinity of the aerobic enzyme for F6P decreased whereas that of the anoxic enzyme form was not affected (at 0.5 mM ATP) or increased (at 3 mM ATP).
  • 6.6. Incubation with Ca2+ + PMA had only a limited effect on PFK kinetics but appeared to enhance the response to cGMP when the three compounds were given together.
  • 7.7. Treatment of PFK-aerobic with alkaline phosphatase resulted in a strong decrease in enzyme activity and affinity for F6P; subsequent treatment with cAMP reversed the effect on S0.5 F6P.
  • 8.8. The data indicate that PFK activity is altered during the aerobic-anaerobic transition by a change in the phosphorylation state of the enzyme and that cAMP and cGMP act oppositely to regulate PFK activity, and thereby alter glycolytic rate, during this transition.
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5.
  • 1.1. The inhibition kinetics of sheep brain butyrylcholinesterase (BChE) (acylcholine acylhydrolase, EC 3.1.1.8) by Cd2+ and Zn2+ has been studied.
  • 2.2. Ks has been determined as 0.14mM. Cd2+ and Zn2+ were the hyperbolic mixed-type inhibitors of BChE. Ca2+ and Mg2+ had no effect on the enzyme activity in the experimental conditions.
  • 3.3. But when the enzyme was inhibited by 0.1 mM Cd2+ or Zn2+, Ca2+ and Mg2+ reactivated the inhibited form of BChE.
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6.
  • 1.1. In the plasma membrane of mussel gill cells an ouabain insensitive, Ca2+-activated ATPase activity is present. The ATPase has high Ca2+ affinity (Kma = 0.3 μM).
  • 2.2. The optimum assay conditions to evaluate the enzymatic activity of the Ca2+-stimulated ATPase at 19°C are: 120–300 mM KCl ionic strength, pH 7.0 and 2 mM ATP. As for mammalian enzymes, the Ca2+ ATPase activity is stimulated by DTT (0.5–1 mM) and it is inhibited by low concentrations of vanadate (10–50 μM) and -SH inhibitors such as PCMB and PCMBS (10 μM); the enzyme appears to be calmodulin insensitive.
  • 3.3. Electrophoretic analyses of plasma membrane proteins demonstrate that: (a) Ca2+ at n-μM concentrations is necessary to activate ATP hydrolysis with consequent formation of the enzyme-phosphate complex; (b) the steady state concentration of the phosphorylated intermediate is increased in the presence of La3+; (c) the mol. wt of Ca2+ ATPase is about 140 kDa.
  • 4.4. Low Ca2+ concentrations (n-μM) are sufficient to stimulate the ATP-dependent Ca2+ uptake by plasma membrane inside-out vesicles.
  • 5.5. The results indicate that the Ca2+ pump present in the gill plasma membranes could be responsible for Ca2+ extrusion and therefore involved in maintaining the cytosolic Ca2+ concentration within physiological levels.
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7.
  • 1.1. Alkaline phosphatase (orthophosphoric monoester phosphohydrolase EC 3.1.3.1.) was extracted from the small intestines of the rainbow lizard Agama agama, partially purified by DEAE-cellulose and Sephadex G-200 column chromatography and characterized.
  • 2.2. The enzyme had an optimum pH at 9.5 in sodium carbonate/bicarbonate buffer: a Km of 1.6 mM with p-nitrophenyl phosphate; a molecular weight of 132,000; was inhibited by Zn2+, EDTA, urea and phenylalanine; stimulated by Co2+, Mn2+ and Mg2+, but Ca2+ had little or no effect on the activity of the enzyme.
  • 3.3. The inhibition by urea was non-competitive, that by phenylalanine was uncompetitive. The enzyme was heat-labile.
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8.
  • 1.1. Activation of Mg2+-ATPase of rabbit and guinea-pig erythrocyte membrane by bicarbonate or chloride could be completely abolished by ethylene-glycol-bis-(β-aminoethylether)-N,N'-tetraacetic acid. The anion stimulation was actually an activation of contaminating Ca2+ -stimulated Mg2+-ATPase by monovalent cations associated with the anions.
  • 2.2. Guinea-pig red cell Ca2+-Mg2+-ATPase could be activated by both sodium and potassium while the rabbit enzyme was sensitive only to sodium. The concentrations of monovalent cations for half-maximal stimulation of Ca2+-Mg2+-ATPase are: kna+ = 40.8 mM, kk+ = 12.2 mM (guinea-pig); KNa+ = 13.3mM (rabbit).
  • 3.3. Potassium enhanced activation of rabbit erythrocyte membrane Ca2+-Mg2+-ATPase by red cell Ca2+-Mg2+-ATPase activator protein. With the guinea pig enzyme, neither sodium nor potassium enhanced activator stimulation of Ca2+-Mg2+-ATPase.
  • 4.4. Ca2+-Mg2+-ATPase of aged rabbit erythrocyte membrane responded to sodium but not to activator protein.
  • 5.5. Triton X-100 solubilized rabbit erythrocyte membrane Ca2+-Mg2+-ATPase has an apparent molecular weight of 371,000. It did not respond to the activator.
  • 6.6. One major and three minor proteins, visualized by SDS-polyacrylamide gel electrophoresis, were extracted from rabbit erythrocyte membrane by 50 μM chlorpromazine.
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9.
  • 1.1. Cytosolic isocitrate dehydrogenase from rat and pig ovaries differs from that described in other tissues. It is more labile, has higher Km-values for substrates, higher optimal pH, and its activity is modulated by varying ratios of Ca2+: Mg2+. The ovarian enzyme exhibits acute and long term responses to in vivo administration of gonadotropins.
  • 2.2. A partial purification yielding a 70-fold increase in specific activity of this NADP+ dependent enzyme is described. The enzyme mol wt = 58,000 ± 3000 daltons and pI = 4.9.
  • 3.3. The unique properties of the enzyme are discussed in relation to its probable metabolic role in ovary.
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10.
  • 1.1. Evidence was obtained that activities of both low-affinity Ca2+-ATPase and high-affinity (Ca2+ + Mg2+)-ATPase in the plasma membrane-rich fraction from bovine parotid gland reside on the same enzyme.
  • 2.2. Two solubilized ATPases were purified by four steps of HPLC; and both activities eluted at the same fractions from each column, and the specific activity ratio of the two enzymes at each step was constant.
  • 3.3. By non-denaturing PAGE, the final preparation gave a single band for both protein staining and activity staining for the two ATPases; and the Ca2+-ATPase activity comigrated with that of (Ca2+ + Mg2+)-ATPase.
  • 4.4. In SDS-PAGE, each activity staining for the ATPases also gave a single band, and both activities comigrated.
  • 5.5. These findings suggest that Ca2+-ATPase and (Ca2+ + Mg2+)-ATPase are a single enzyme.
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11.
  • 1.1. Two components of Ca2+-Mg2+-ATPase are observed in kidneys of G. mirabilis. The high-affinity component has a K0.5Ca of 0.23μM; the low-affinity activity K0.5Ca is 90–110μM. The high-affinity activity requires Mg2+, displays Michaelis-Menten kinetics, has peak activity at 1.2 μM Ca2+, and is insensitive to ouabain and Na+ azide.
  • 2.2. In subcellular fractions, the high-affinity component segregates with Na+-K+-ATPase and is localized predominantly in BLM. The low-affinity component is broadly distributed among membranous organelles, including brush border, and may be equivalent to alkaline phosphatase.
  • 3.3. Specific activity of the high-affinity Ca2+-Mg2+-ATPase is modestly increased following adaptation of fish to FW, but total renal high-affinity activity is greatest in the hypertrophied kidneys of FW-adapted fish and is least in kidneys of fish adapted to 200% SW.
  • 4.4. High-affinity Ca2+-Mg2+-ATPase may be associated with active Ca2+ transport or with regulation of intracellular Ca2+ concentration of tubular cells.
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12.
  • 1.1. Crude extract of the whole digestive tract from the brown shrimp (P. californiensis) was investigated for digestive amylase activity.
  • 2.2. Considerable amylase activity was found at pH 6.5–8.0, with optimum pH at around 7.5.
  • 3.3. Optimum temperature was found between 30–40°C, similar to amylases from other crustaceans.
  • 4.4. Amylase activity was highly halotolerant, having 50% maximum activity at 3 M NaCl.
  • 5.5. Maximum amylase activity was found at 0.01 M NaCl.
  • 6.6. Amylase activity was partially inhibited by the divalent ions Hg2+, Zn2+, Cu2+ and Cr2+.
  • 7.7. Mg2+ and Ca2+ ions seemed to enhance amylase activity.
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13.
  • 1.1. Vesicles from the sarcoplasmic reticulum of lobster muscle accumulate Ca2+ if supplied with ATP as an energy source. A search was undertaken for inhibitors of Ca2+ transport.
  • 2.2. p-Hydroxymercuribenzoate can completely inhibit Ca2+ transport and ATP hydrolysis. 2–4 Dinitrophenol inhibits uptake but not hydrolysis.
  • 3.3. Sr2+, Ba2+ and Zn2+ inhibit uptake, perhaps by competing with Ca2+ for a carrier.
  • 4.4. The vesicles contain acetylcholinesterase. Anticholinesterases can reduce —but not abolish—Ca2+ uptake. Acetylcholine has no effect on the activity of the vesicles.
  • 5.5. Ca2+ uptake is not affected by Mn2+, glutamate, pilocarpine, carnosine, caffeine, strophanthidin or tetraethylammonium.
  • 6.6. K+ is needed for maximal activity of the uptake system but not for ATP hydrolysis. Apparently K+ enhances the coupling between the energy supply and the carrier mechanism.
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14.
  • 1.1. The response to light of Hermissenda photoreceptors when recorded intracellularly without interference from synaptic and action potentials consisted of three phases: an early depolarization (ED) followed by hyperpolarization (dip) and subsequent depolarization (tail).
  • 2.2. The ED and the dip were associated with increased membrane conductance while decreased membrane conductance was involved with the tail.
  • 3.3. The dip reversal potential was − 82.1 ± 5.3 mV and its amplitude varied inversely with the log of [K+].
  • 4.4. Perfusing with agents which block K+ current like 4AP, Quinine, Quinidine or injection of TEA eliminated the dip and its associated increased membrane conductance, thus further supporting the role of K+ conductance in producing the dip.
  • 5.5. The dip was enhanced by increased [Ca2+]o, reduced by decreased [Ca2+]o and abolished together with its associated increased membrane conductance when perfused with either D600, Cd2+, Mg2+, Mn2+, or Co2+, which block transmembrane Ca2+ current.
  • 6.6. The dip and its associated increased membrane conductance were abolished by intracellular injection of EGTA and enhanced by perfusion with Ruthenium red.
  • 7.7. Intracellular injection of Ca2+ mimicked the dip: membrane conductance was increased and the cell hyperpolarized.
  • 8.8. These results indicate that the increase in intracellular [Ca2+] is primarily responsible for the light-induced increase of K+ conductance during the dip. The possible source of the Ca2+ is, at least in part, extracellular due to activation of an inward Ca2+ current.
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15.
  • 1.1. Subcellular fractions of rat liver were assayed for PLA2 activity.
  • 2.2. The PLA2 assay measures the release of [3 H]oleic acid from phospholipids, using labeled E. coli as substrate.
  • 3.3. Nuclear fractions contained PLA2 activity, which was Ca2+ dependent and could not be explained from mitochondrial, microsomal or plasma membrane contamination.
  • 4.4. The Vmax value of nuclear PLA2 is 0.30 ± 0.04 pmol oleic acid/min/mg protein; its Km value is 0.86±0.12μM, similar to that of mitochondrial PLA2.
  • 5.5. We conclude that rat liver nuclei contain PLA2 activity.
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16.
  • 1.1. The objective of the present study was to determine the effect of age and taurine on chick B cell calcium uptake and membrane (Ca2+ + Mg2+)-ATPase activity in 1–4-week-old chicks.
  • 2.2. The calcium uptake rate decreased with age (P < 0.05) and was further decreased by taurine (P < 0.05).
  • 3.3. (Ca2+ + Mg2+)-ATPase activity increased with age (P < 0.05) and was stimulated by taurine (P < 0.05).
  • 4.4. The data demonstrate that the flux of calcium across the B-cell membrane changes during early post-hatch development, and that taurine regulates both the influx and efflux of calcium in chick B-cells.
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17.
  • 1.1. Ryanodine, an alkaloid used as an insecticide, has been shown to depress contraction while leaving excitation unaffected in mammalian hearts, an effect presumed to result from uncoupling of the transverse tubular system (TTS) from the sarcoplasmic reticulum (SR).
  • 2.2. The heart of the adult moth Hyalophora cecropia, a tissue known to have septate junctions between the TTS and SR and a Ca2+ -spike generating sarcolemma was used to further test this hypothesis.
  • 3.3. We first report the basic characteristics of the contractile response and demonstrate a negative force-frequency effect, a diminished calcium current (ICa2+) in the presence of acetylcholine and an enhanced ICa2+ with epinephrine.
  • 4.4. Ryanodine 10−8M added to this preparation slowed the inherent rhythm (interval 0.6–4 sec), depolarized the cells by 10–14 mV, reduced action-potential amplitude (from 66 to 52 mV), prolonged the plateau (from 80 to 280 msec), and decreased dV/dt from 4 to 2.8 V/sec.
  • 5.5. The magnitude of peak tension was not affected, but the time to peak tension was increased from 160 to 200 msec and the relaxation time was prolonged from 200 to 480 msec.
  • 6.6. The refractory period was increased, thereby preventing the heart from following increased rates of pacing by externally applied stimuli.
  • 7.7. We conclude that ryanodine interferes first with the sarcolemmal Ca2+-delivery system and then the SR calcium-sequestration system.
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18.
  • 1.1. The purified enzyme hydrolyzes the linear l-lysinamide and the cycle amide of l-lysine—l-α-amino-ϵ-caprolactam.
  • 2.2. The apparent relative molecular mass is 180,000. The enzyme consists of four subunits and the molecular mass of a single subunit was found to be 47,000.
  • 3.3. The coefficient of molecular sedimentation equals 8.3 S, the isoelectric point was determined to be pH 4.3
  • 4.4. The enzyme is not a glycoprotein. p-Mercuribenzoate binds 10 SH-groups of the native enzyme molecule and 20 SH-groups in the presence of 0.7% SDS.
  • 5.5. pH- optimum for the hydrolysis of l-lysine amides was observed to be 7.5–7.7. The enzyme is strictly dependent on Mn2+ and Mg2+.
  • 6.6. The kinetic parameters for the hydrolysis of l-lysinamide where Km = 3.8 mM and kcat = 3000 sec−1 For the hydrolysis of cyclic L-lysinamide Km = 4.8 mM and kcat = 2600 sec.
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19.
  • 1.1. When assayed under a variety of ionic conditions rat milk RNAase activity was highest under added Ca2+ while the serum enzyme was highest in no added ion, suggesting that milk was higher in the mammary-specific, Ca2+ -stimulated, RNAase than was the serum of lactating rats.
  • 2.2. The acrylamide gel electrophoresis results demonstrated that milk RNAase differed from serum RNAase both in distribution and ionic preference; all milk RNAase species strongly preferred Ca2+ while serum RNAase species had no ionic preference.
  • 3.3. The Sephacryl S200 separation accentuated these differences by showing that 98% of the total milk RNAase activity was Ca2+ -stimulated and clustered in a region of higher molecular weight than the serum enzyme which again had no ionic preference.
  • 4.4. From these results, we conclude that the vast majority of milk RNAase molecules are not transported by the serum, but must originate in the alveolar cells.
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20.
  • 1.1. DEAE-cellulose chromatography of mycelial alkaline phosphatase (orthophosphoric monoester phosphohydrolase, EC 3.1.3.1) from Basidiobolus haptosporosus, produced three iso-enzymes “A”, “B” and “C”.
  • 2.2. Fraction “A” was further characterized and showed maximum activity at pH 10 in 0.1 M sodium carbonate-bicarbonate buffer.
  • 3.3. The enzyme was stimulated by Mg2+, Co2+ and Mn2+ and inactivated by Zn2+, Cu2+, EDTA, citrate and tartrate.
  • 4.4. Phosphate ions inhibited it competitively, phenylalanine uncompetitively and urea noncompetitively.
  • 5.5. It was heat stable for 60 min at 37°C but labile above 55°C.
  • 6.6. Its Km with p-nitrophenylphosphate was 0.5 mM; its estimated molecular weight was 160,000.
  • 7.7. The results are compared with the properties of alkaline phosphatases from the rainbow lizard and man and discussed in terms of a triadic association between the fungus, the lizard and man.
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