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1.
  • 1.1. The d-lactate dehydrogenase from Leuconostoc lactis has been purified in high yield.
  • 2.2.The enzyme is a dimer of subunits of Mr = 39,000 and each subunit contains a single thiol group. The N-terminal residue is methionine.
  • 3.3. The amino acid composition has been determined and is typical of that of a soluble globular protein.
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2.
  • 1.1. A red-fluorescent blue protein (P600) was purified from the digestive juice of the silkworm (Bombyx mori L.) larvae raised on mulberry leaves.
  • 2.2. The purified protein was electrophoretically homogeneous and showed the absorption maxima at 601.5 nm and 278 nm, and the fluorescence maximum at 621 nm.
  • 3.3. The molecular weight was estimated to be 540,000 by gel filtration on Sepharose CL-6B. Polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate suggests that the protein consists of two heterogeneous polypeptide subunits with a mol. wt of 15,000 and 18,000.
  • 4.4. The P600 contains excess acidic amino acid residues over basic groups. The polarity and pI were 45.5% and 4.6, respectively.
  • 5.5. The production of H2O2 was observed in the presence of P600 upon illumination.
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3.
  • 1.1. Glycollate oxidase has been purified to apparent homogeneity from Lemna minor L. grown on medium containing 7mM NO3.
  • 2.2. The enzyme is a highly basic protein with a sub-unit molecular weight of 42,000 and a holoprotein molecular weight of 250,000.
  • 3.3. The Lemna enzyme is a flavoprotein with a broad specificity for straight chain α-hydroxy acids, the preferred substrate being glycollate.
  • 4.4. It is also competitively inhibited by oxalate and phenyllactate.
  • 5.5. A comparison is drawn between the physical properties of glycollate oxidase from a number of higher plants and the degree of sub-unit aggregation in the resulting protomers.
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4.
  • 1.1. Subcellular distribution of (NA+, K+-ATPase and ouabain-insensitive ATPase (Mg2+-ATPase) are compared in branchial tissues of the euryhaline crab, Eriocheir sinensis, acclimated to fresh water.
  • 2.2. Both the anterior and posterior gills contain cAMP-dependent protein kinase and endogenous protein substrate for phosphorylation.
  • 3.3. Phosphorylation occurs in both “particulate” and “soluble” subcellular fractions but its stimulation by cAMP is restricted to the “soluble” fraction.
  • 4.4. serotonin (5-HT) and dopamine receptors are present only in the “light particulate” fraction isolated from the posterior gills.
  • 1.(a) Serotonin and dopamine have no effect on the phosphorylation observed in a subcellular fraction alone.
  • 2.(b) Activation of the phosphorylation by serotonin and dopamine is found when the soluble fraction (source of cAMP-dependent protein kinase) is added to the fraction P3 from the posterior gills.
  • 3.(c) No activation occurs with the fractions P3 as well as P1 or P2 (not shown) from anterior gills of fresh water crab.
  • 4.(d) Cyproheptadine, a serotonin receptor antagonist, inhibits the 5-HT dependent increase in phosphorylation.
  • 5.(e) The dopamine receptor antagonist, chlorpromazine, inhibits dopamine-stimulated phosphorylation.
  • 6.5. Ouabain mimics the effect of cyproheptadine on the serotonin-stimulated phosphorylation found in the posterior gills.
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5.
  • 1.1. A new tetralysine endopeptidase from Escherichia coli AJ005 has been purified about 135-fold.
  • 2.2. The peptidase seems to be specific to tetralysine among lysine homopolymers.
  • 3.3. The optimal pH was about 7.5
  • 4.4. The activity was inhibited by KCN but not inhibited by soybean trypsin inhibitor.
  • 5.5. The apparent Km value was 2.5 × 1O−3 M for tetralysine.
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6.
  • 1.1. A lipoxygenase activity was purified from Thermoactinomyces vulgaris and some of its properties were characterized.
  • 2.2. The enzyme showed a temperature activity range of 40–55°C with still significant activity over 60°C.
  • 3.3. The pH of activity on linoleic acid had a broad range with an optimum at pH 6.0 and a weaker one at pH 11.0.
  • 4.4. On arachidonic acid the pattern was narrow bell-shaped with an optimum at pH 6.5.
  • 5.5. The purified lipoxygenase from Th. vulgaris showed an apparent Km of 1 mM and Vmax of 0.84 μmol diene/min/mg protein.
  • 6.6. It was inhibited by the oxidation products, 9-HPOD and 13-HPOD.
  • 7.7. A 160,000 Da molecular weight of the enzyme was determined by molecular filtration. Methionine, tyrosine, tryptophan and cysteine are apparently involved in its activity.
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7.
  • 1.1. Hydroxypyruvate reductase has been purified 193-fold from Lemna minor L. by affinity chromatography on Blue Sepharose.
  • 2.2. The enzyme has activity over a broad pH range (optimum pH 6), a Km hydroxypyruvate of 59 μ M and Km NADH of 12μM.
  • 3.3. Crude extracts of Lemna exhibit substrate inhibition of activity above 1 mM hydroxypyruvate, a property which is lost on purification.
  • 4.4. Oxaloacetate inhibits purified preparations of the enzyme and a possible role for such regulation in vivo is discussed.
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8.
  • 1.1. Pseudomonas aeruginosa phospholipase C from culture supernatants of bacteria grown in high-Pi basal salt medium with choline, as the sole carbon and nitrogen source, was purified by precipitation with 70% saturation ammonium sulfate in the presence of celite.
  • 2.2. The PLC activity was eluted of this mixture by the use of a reverse gradient of 70-0% ammonium sulfate.
  • 3.3. The peak containing the PLC activity revealed a single protein after SDS-PAGE.
  • 4.4. The method could also be applied to purify PLC produced in a low-Pi complex medium. The resultant preparation was not homogeneous.
  • 5.5. The molecular weight for both PLC preparations was about 70 kDa.
  • 6.6. Both PLC used phosphatydilcholine and sphingomyelin as substrates, displayed hemolytic activity an exhibited an apparent KM of 25 mM for p-nitrophenylphosphorylcholine.
  • 7.7. They were not inhibited by 1% sodium deoxycholate but were 30% inhibited by 1% Triton X-100.
  • 8.8. 2% sodium dodecylsulfate and 1% tetradecyltrimethylammonium bromide inhibited the PLC from the HPl-BSM plus choline but not the enzyme from the LPl-CM.
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9.
  • 1.1. A novel glycogen phosphorylase inhibitor was partially purified from crayfish hepatopancreas.
  • 2.2. The inhibitor was found only in two species of crayfish examined, and not in lobster, fresh and salt water clams, mussels or cockroaches.
  • 3.3. The inhibitor is a small protein (Mr = 23,000) which did not show proteolytic activity.
  • 4.4. Preliminary kinetic analysis of the inhibitory mechanism indicated that it bound to both glycogen and the glycogen phosphorylase protein.
  • 5.5. Inhibitor binding to glycogen resulted in a competitive inhibition pattern with respect to glycogen phosphorylase (inhibition constant of ca 10 μg/ml).
  • 6.6. The inhibitor also bound glycogen phosphorylase directly with a binding coefficient of 100 μg/ml resulting in a partially non-competitive inhibition pattern with respect to phosphate.
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10.
  • 1.1. Kinetic and physico-chemical studies on human placental microsomal fraction confirmed that the ATPase and ADPase activities detected in this fraction correspond to the enzyme ATP-diphosphohydrolase or apyrase (EC 3.6.1.5). These include substrate specificity, and coincident Mr and pI values of both ATPase-ADPase activities.
  • 2.2. This enzyme hydrolyses both the free unprotonated and cation-nucleotide complex, the catalytic efficiency for the latter being considerably higher.
  • 3.3. Microsomal apyrase is insensitive to ouabain and Ap5A. The highly purified enzyme was only inhibited by o-vanadate, DBS and slightly by DCCD.
  • 4.4. Apyrase seems to be a glycoprotein from its interaction with Concanavalin-A.
  • 5.5. Preliminary studies on the essential amino acid residues suggest the participation of Arg, Lys and His residues, and discard the requirement of −SH, COO, −OH, and probably also Tyr and Trp.
  • 6.6. Two kinetic modulatory proteins of apyrase were detected in placental tissue. An activating protein was found in the soluble fraction and an inhibitory protein was loosely bound to the membranes.
  • 7.7. The proposed in vivo function for apyrase is related to the inhibition of platelet aggregation due to its ADPase activity, which is supported by the direct effect on washed platelets and by its plasma membrane localization.
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11.
  • 1.1. A soluble carotenoid-pheophytin-protein complex was purified from the digestive juice of fifth instar silkworm larvae raised on mulberry leaves.
  • 2.2. The pigment-protein complex showed absorption maxima at 276, 429, 453, 481 and 670 nm. Major pigment components were identified as α-carotene, pheophytin a and b.
  • 3.3. This complex has an acidic protein component having an isoelectric point of 4.6. The molecular weight was estimated to be 68,000 with four identical subunits.
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12.
  • 1.1. An alkaline p-nitrophenylphosphate phosphatase has been purified 440-fold from extracts of Hatobacterium halobium.
  • 2.2. The enzyme has an apparent molecular weight of 24,000.
  • 3.3. A Km value for p-nitrophenylphosphate of 1.12mM has been found under optimal conditions.
  • 4.4. The enzyme is selectively activated and stabilized by Mn2+.
  • 5.5. It requires high salt concentrations for stability and maximum activity.
  • 6.6. It displays an unusual restricted substrate specificity of 25 phosphate esters tested, only phosphotyrosine and casein were hydrolysed besides p-nitrophenylphosphate.
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13.
  • 1.1. Protein phosphorylation in intact chicken latissimus dorsi muscle, slow anterior (ALD) and fast posterior (PLD), was compared.
  • 2.2. A major difference in [32P]phosphate incorporation was found between the ALD and PLD in a 25,000-dalton heat soluble protein.
  • 3.3. The 25,000-dalton protein was purified from both the ALD and PLD.
  • 4.4. The two proteins had similar amino acid composition and both contained approximately 1 mole phosphate per mole of protein.
  • 5.5. The difference in their content of radioactive phosphate was determined to be due to faster turnover in the ALD.
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14.
  • 1.1. To understand the physiological roles of the 90-kDa stress protein (HSP90), we investigated the heparin- and antibody-binding domains of the protein.
  • 2.2. For heparin-binding sites, HSP90 was digested completely with trypsin, and the digests were applied to a heparin-Sepharose column and eluted with 1.0 M NaCl, followed by 8.0 M urea.
  • 3.3. Each elutant was purified by a reverse-phase C18 column.
  • 4.4. Two peptides from the NaCl-eluted fraction and no peptide from the urea-eluted fraction were purified.
  • 5.5. The purified peptides were sequenced by an automated peptide sequencer.
  • 6.6. One of the heparin-binding sites was present between Leu-362 and Arg-365; another was present between Leu-645 and Lys-648.
  • 7.7. These two peptides were basic and considerably hydrophilic.
  • 8.8. For antibody-binding sites, HSP90 was mildly digested with trypsin, electrophoresed on SDS-polyacrylamide gels and transferred to PVDF membranes.
  • 9.9. The four bound of the trypsin fragments could be sequenced with a peptide sequencer.
  • 10.10. There was only one antibody-binding peptide, 38 kDa, starting from Pro-2. The others showed no cross-reactivity with the antibody and started from Leu-283.
  • 11.11. Therefore, the epitopes of HSP90 are present between Pro-2 and Leu-282.
  • 12.12. The heparin-binding sites are present from the middle region of the HSP90 molecule, and the antigen sites are at the N-terminal domain.
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15.
  • 1.1. The inhibitory effect of N,N,N′,N′-tetramethylethylene diamine (TEMED) on water soluble (WSAChE) and membrane bound (MBAChE) acetylcholinesterase was investigated.
  • 2.2. TEMED (0.5–4.0 mM) reversibly inhibited WSAChE activity (18–62%) and MBAChE (20–61%) in a concentration dependent manner.
  • 3.3. The IC50 being about 2.8 mM for WSAChE and 2.6 mM for MBAChE.
  • 4.4. Lineweaver-Burk plots indicated that the nature of inhibition is noncompetitive for both water soluble and membrane bound acetylcholinesterase, with Km values 68 μM and 123 μM respectively.
  • 5.5. An Arrhenius plot showed that the transition temperature (TT) is unaffected in the presence of TEMED.
  • 6.6. The activation energy was increased below and above TT in the case of WSAChE only.
  • 7.7. On the basis of this behaviour of TEMED with AChE. it can be proposed that it can be used as an eluting agent for the bounded AChE to affinity ligand and may have beneficial action on the reactivatability of irreversibly-inhibited AChE due to its structure.
  • 8.8. Moreover there is a possibility that it can be used as a therapeutic agent for the treatment of Alzheimer's disease, myasthenia gravia and glaucoma like some other inhibitors of AChE.
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16.
  • 1.1. A glycogen/protein complex which contains the major portion of glycogen synthase activity in Ascaris suum muscle has been purified.
  • 2.2. The complex contains two proteins which can be dissociated from a glycoprotein component.
  • 3.3. The glycoprotein contains glycogen-like domains and is resistant to trypsin digestion.
  • 4.4. The glycogen synthase activity in the purified complex catalyzes glycogen synthesis in the absence of exogenous glycogen, but demonstrates an absolute glucose 6-phosphate requirement for activity.
  • 5.5. The data support the hypothesis that this isozyme of glycogen synthase is significantly different from the cyclic AMP-regulated enzyme.
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17.
  • 1.1. Three forms of cholinesterase were sequentially extracted from head and tentacles of Sepia officinalis and noted as low-salt (LSS), detergent (DS) and high-salt (HSS) soluble. They represent about 24, 30 and 46% of total activity.
  • 2.2. All enzyme forms seem to be amphiphilic proteins with hydrophobic domains interacting with non-ionic detergent (Triton X-100) and giving self-aggregation (LSS form).
  • 3.3. The DS form is membrane-anchored by a phosphatidylinositol, while the HSS form is likely linked to some proteoglycan molecule of the extracellular matrix by ionic interactions.
  • 4.4. According to Vmax/Km values, all the enzymes are acetylcholinesterases, even if hydrolyze propionylthiocoline at the highest rate.
  • 5.5. Some kinetic and molecular properties of the studied enzymes are compared with those of other cholinesterases from vertebrates and invertebrates. Possible phylogenic and adaptive features are discussed.
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18.
  • 1.1. Phospholipase A2 was isolated from Agkistrodon bilineatus venom by Sephadex G-75 and CM-Cellulose column chromatographies.
  • 2.2. The purified phospholipase A2-I gave a single band on disc polyacrylamide gel electrophoresis, isoelectric focusing and sodium dodecyl sulfate polyacrylamide gel electrophoresis.
  • 3.3. The enzyme preparation had a molecular weight of 14,000, isoelectric point of pH 8.77 and possessed 123 amino acid residues.
  • 4.4. The purified phospholipase A2 possessed lethal, indirect hemolytic and anticoagulant activities.
  • 5.5. The enzyme hydrolyzed the phospholipids phosphatidyl choline (PC), phosphatidyl ethanolamine (PE), phosphatidyl inositol (PI) and phosphatidyl serine (PS).
  • 6.6. The concentration of mouse diaphragm was inhibited and the contraction of guinea pig left atrium was increased by phospholipase A2-I.
  • 7.7. Phospholipase A2 activity of this preparation was inhibited by ethylenediamine tetraacetic acid, p-bromo phenacyl bromide, n-bromo succinimide or dithiothreitol, but not by diisopropyl fluorophosphate or benzamidine.
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19.
  • 1.1. Mammalian major apurinic/apyrimidinic (AP) endonuclease, APEX nuclease (Mr 35.4 kDa) was purified from HeLa cells. A hybrid protein (Mr 36.4 kDa), which was expressed in BW2001 strain cells of E. coli, comprising human APEX nuclease headed by 10 additional amino acids was also purified.
  • 2.2. The purified preparations were frequently associated with 31-, 33- and 35-kDa peptides having AP endonuclease activity.
  • 3.3. The 33- and 35-kDa peptides were suggested to be formed from the hybrid protein or APEX nuclease during their purification processes by proteolytic cleavage with subtilisin-like protease. The 31-kDa peptide was thought to be produced by chemical cleavage of the aspartyl-prolyl bond of APEX nuclease.
  • 4.4. The results support the notion that some of AP endonuclease heterogeneity based on the molecular weight difference are caused by proteolytic (and chemical) cleavage of a species of AP endonucleases during the extraction and purification.
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20.
  • 1.1. The specific activity of GMP synthetase was measured in several human tissues and found to be highest in cultured skin fibroblasts, followed by bone marrow, leukocytes, erythrocytes. placenta, and liver.
  • 2.2. The enzyme from fibroblasts was purified approximately 50-fold by ammonium sulfate fractionation and gel filtration.
  • 3.3. The Km values were determined to be 4.9μM for XMP, 270μM for ATP. and 340 μM for glutamine.
  • 4.4. Ammonium sulfate could replace glutamine as the amino donor but was much less efficient.
  • 5.5. The enzyme was specific for ATP as the energy source.
  • 6.6. Unlike the calf thymus enzyme, the human enzyme has no requirement for a reduced sulfhydryl compound.
  • 7.7. Human GMP synthetase is inhibited by ATP, dATP, azaserine, and hydroxylamine.
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