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1.
  • 1.1. An elastase-like enzyme was purified from the pyloric caeca of rainbow trout by hydrophobic interaction, cation exchange and gel-filtration chromatography.
  • 2.2. The approximate molecular weight of the elastase was 27 kDa and the isoelectric point was remarkably basic.
  • 3.3. The pH optimum of this enzyme was 8.0, when assayed with Succinyl-Ala-Ala-Ala-p-Nitroanilide.
  • 4.4. When assayed with Succinyl-Ala-Ala-Ala-p-Nitroanilide, the enzyme activity had a temperature optimum of 45°C, and the enzyme was stable up to this temperature.
  • 5.5. The trout elastase exhibited a higher specific activity than porcine elastase against Succinyl-Ala-Ala-Ala-p-Nitroanilide and elastin-orcein.
  • 6.6. The trout elastase was inhibited by elastatinal, PMSF, TPCK, SBTI and Bowman-Birk inhibitor.
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2.
  • 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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3.
  • 1.1. Fundamental chitin digestion characteristics of Crassostrea virginica crystalline style were investigated.
  • 2.2. Optimum temperature and pH were 34°C and 4.8. respectively.
  • 3.3. The colloidal regenerated chitin (0.56mol/0.5 ml: GlcNAc equivalents) was saturating under all enzyme levels encountered.
  • 4.4. There was no evidence of end product inhibition, even after 100 hr incubation.
  • 5.5. Calculated Km for the chitinase complex was 1.19mM when determined using a 30 min assay, but was only 0.70 mM when determined using a 4.6 hr assay.
  • 6.6. Both Km values are lower than reported for similar assays in other molluscs and for most bacteria.
  • 7.7. Effect of substrate preparation on the kinetics are discussed.
  • 8.8. Eight peaks of chitinase activity were resolved by DEAE-Fractogel ion exchange chromatography.
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4.
  • 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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5.
  • 1.1. Three kinds of apurinic/apyrimidinic (AP) DNA endonucleases, APcI, APcII, APcIII were purified from rat liver chromatin.
  • 2.2. Molecular weights of APcI, APcII and APcIII were 30,000, 42,000 and 13,000 Da, which have isoelectric points of 7.2, 6.3 and 6.2, respectively.
  • 3.3. Mg2+ was essential for the activities of these 3 enzymes, and sulfhydryl compounds (βercaptoethanol) had a stimulatory effect on the enzyme activities while N-ethylmaleimide and HgCl2 inhibited the enzyme activity.
  • 4.4. Km values of APcI, APcII and APcIII for AP site of DNA were 0.53, 0.27 and 0.36 μM, respectively, and AMP was the most potent inhibitor to these three enzymes among nucleotides tested.
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6.
  • 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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7.
  • 1.1. A bioassay for octopus saliva, based on detachment of crab dactylopodite flexor muscle under standard conditions, has been developed.
  • 2.2. There is a direct relationship between increasing caseinolytic activity of saliva from Eledone cirrhosa and decreasing muscle detachment time.
  • 3.3. Fractionation of saliva, using preparative isoelectric focusing, shows that muscle releasing activity is restricted to fractions containing proteins with high isoelectric points and maximum caseinase activity.
  • 4.4. It is concluded that proteolytic enzyme(s) in octopus saliva selectively release crab muscle from attachment to the carapace.
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8.
  • 1.1. Digestive proteases from the midgut gland of male Atlantic blue crabs, Callinectes sapidus, were investigated. Tentative identities of proteolytic enzymes were determined with synthetic substrates and inhibitors.
  • 2.2. Trypsin, chymotrypsin, carboxypeptidase A and B and leucine aminopeptidase activities were found and quantified.
  • 3.3. Activity against Succinyl-(Ala)3-nitroanalide was also found. This as yet unidentified enzyme has a mol. wt of about 26,000 and has elastolytic activity.
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9.
  • 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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10.
  • 1.1. Malate dehydrogenase has been purified from the foot muscle of Patella caerulea by ion-exchange chromatography on DEAE-cellulose, affinity chromatography on Blue Agarose and gel filtration on Sephadex G-150.
  • 2.2. The yield was 23.5% of the initial activity with a final specific activity of 257 U/mg of protein.
  • 3.3. The apparent mol. wt of the native enzyme is approx. 75,000 and it consists of two subunits of mol. wts in the range of 36,000–39,000.
  • 4.4. The enzyme exhibits hyperbolic kinetics with respect to oxaloacetate, NADH and l-malate. The Km values were determined to be 0.055 mM for oxaloacetate, 0.010 mM for NADH and 0.37 mM for l-malate. The pH optima are around 8.4 for the reduction of oxaloacetate and 9.2–9.6 for the reduction of oxaloacetate and 9.2–9.6 for the l-malate oxidation. Vmax and Km values for oxaloacetate change in an opposite manner with respect to pH values.
  • 5.5. Of the various compounds tested, only α-ketoglutarate, citrate and adenylate phosphates were found to inhibit the enzyme activity.
  • 6.6. From the above properties it appears that the reaction of cytoplasmic malate dehydrogenase of P. caerulea foot muscle is a key reaction in the anaerobic pathway and it occurs with the production of malate.
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11.
  • 1.1. The properties of Na+/K+-transporting ATPase in microsomal fractions from the nervous tissue of the grasshopper, Poekilocerus bufonius were investigated.
  • 2.2. Two components of ATPase activity are present.
  • 3.3. Inclusion of 1 mM ouabain in the incubation media reduced the activity of total and Na+/K+-ATPase by 57 and 79%, respectively.
  • 4.4. The maximum velocity (Vmax) was decreased by the addition of 1 mM ouabain, whereas the apparent Km value was not affected indicating a non-competitive type of inhibition.
  • 5.5. The calculated value of the pI50 was 6.4 (I50 = 3.98 × 10−7M) for ouabain inhibition of the enzyme showing great sensitivity to the cardiac glycoside ouabain.
  • 6.6. The present results show that the physicochemical properties of Na+/K+-transporting ATPase from the brain of P. bufonius are essentially the same as for the enzyme prepared from the excretory system of the insect which has been previously investigated.
  • 7.7. Dissimilarities were also observed between these tissues in the way that the enzyme from the brain was sensitive to ouabain inhibition with a non-competitive type rather than a ouabain-resistance and a competitive type of inhibition for the enzyme from the excretory system.
  • 8.8. These dissimilarities are probably due to different isoenzyme patterns available in the same insect.
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12.
  • 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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13.
  • 1.1. The lipid components of three animals, the rock crab Nectocarcinus integrifons, the rock flathead Platycephalus laevigatus and the southern garfish Hyporhamphus melanochir, feeding in the seagrass beds at Corner Inlet, Victoria, Australia have been examined in detail in order to provide further information on seagrass community structure.
  • 2.2. Biological marker compounds detected within animal gut content material were used to recognize dietary sources and then utilized by community members.
  • 3.3. Both H. melanochir and N. integrifons have been shown to ingest and to varying degrees incorporate seagrass lipid material, thus further confirming the importance of seagrass carbon in the Corner Inlet environment.
  • 4.4. The southern sea garfish H. melanochir is observed to remove C18 PUFAs (polyunsaturated fatty acids) from ingested seagrass material.
  • 5.5. Seagrass sterols are altered during incorporation into the lipids of this fish.
  • 6.6. Lipid-rich digestive juices play a role in the digestive processes of all three animals.
  • 7.7. Components tentatively identified as (NMI) (non-methylene interrupted) fatty acids have been detected in the lipids of the garfish H. melanochir and the crab N. integrifons.
  • 8.8. The fecal material of all three animals represent possible sources of these lipids (NMI acids) in Corner Inlet sediments.
  • 9.9. Based on lipid compositional data, N. integrifons feeds on Posidonia australis detritus and associated epiphyte material.
  • 10.10. The removal of both plant and epibiota cellular lipids along the digestive tract of the crab was observed, although structural components such as long chain mono- and α,ω-dicarboxylic acids, which have been previously recognized as seagrass marker lipids are not directly absorbed.
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14.
  • 1.1. Arylsulfatase was extracted from sea urchin (Hemicentrotus pulcherrimus) plutei and purified to electrophoretical homogeneity by means of DEAE-cellulose, acetone fractionation and Sepharose CL-6B, successively.
  • 2.2. The molecular weight of this enzyme was approx, 670,000. The molecular weight of a single subunit was approx. 63,000. The Km value for p-nitrophenyl sulfate was 0.59 mM.
  • 3.3. This enzyme was competitively inhibited by the sulfate ion and was classified as the type II arylsulfatase. The pH optimum was between 5.0 and 6.0.
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15.
  • 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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16.
  • 1.1. Optimum in vitro conditions, and kinetics of the enzyme catechol-O-methyltransferase from the brain of the male African catfish were studied.
  • 2.2. A saturated level for S-adenosylmethionine, as methyldonor, and magnesium as cofactor was reached at 5 μM and 10 mM, respectively.
  • 3.3. The addition of ascorbic acid, as an antioxidant, and tranylcypromine, as a MAO inhibitor, was not necessary, during incubations with fore-brain homogenates.
  • 4.4. Kinetic analysis of the methylation of catecholestrone, catecholestradiol and dopamine showed Km values of 1.2, 0.6 and 0.5 μM, respectively.
  • 5.5. The affinity of the catecholsubstrates for the enzyme catechol-O-methyltransferase is much higher in the brain of the African catfish than in tissues of mammals.
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17.
  • 1.1. Halobacterium halobium has two chromatographically distinct forms of glutamate dehydrogenase which differ in their thermolability and other properties. One glutamate dehydrogenase utilizes NAD, the other NADP as a coenzyme.
  • 2.2. The NADP-specific glutamate dehydrogenase (EC 1.4.1.4) was purified 65-fold from crude extracts of H. halobium.
  • 3.3. The Michaelis constants for 2-oxoglutarate (13.3 mM), ammonium (3.1 mM) and NADPH (0.077 mM) indicate that the enzyme catalyzes in vivo the formation of glutamate from ammonium and 2-oxoglutarate.
  • 4.4. The amination of 2-oxoglutarate by NADP-specific glutamate dehydrogenase is optimal at the pH value of 8.0–8.5. The optimal NaCl or KCl concentration for the reaction is 1.6 M.
  • 5.5. None of the several metabolites tested for a possible role in the regulation of glutamate dehydrogenase activity appeared to exert an appreciable influence on the enzyme.
  • 6.6. NAD- and NADP-dependent glutamate dehydrogenases from H. halobium showed apparent molecular weights of 148,000 and 215,000 respectively.
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18.
  • 1.1. A NAD+-dependent glutamate dehydrogenase (EC 1.4.1.2.) was purified 126-fold from Halobacterium halobium.
  • 2.2. Activity and stability of the enzyme were affected by salt concentration. Maximum activity of the NADH-dependent reductive amination of 2-oxoglutarate occurs at 3.2 M NaCl and 0.8 M KCl, and the NAD+-dependent oxidative deamination of l-glutamate occurs at 0.9 M NaCl and 0.4 M KCl. The maximum activity is higher with Na+ than with K+ in the amination reaction while the reverse is true in the deamination reaction.
  • 3.3. The apparent Km values of the various substrates and coenzymes under optimal conditions were: 2-oxoglutarate, 20.2 mM; ammonium, 0.45 M; NADH, 0.07 mM; l-glutamate, 4.0 mM; NAD+, 0.30 mM.
  • 4.4. No effect of ADP or GTP on the enzyme activity was found. The purified enzyme was activated by some l-amino acids.
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19.
  • 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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20.
  • 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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