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Substrate specificity of tonin from rat submaxillary gland.

The substrate specificity of tonin from rat submaxillary gland was examined with a series of synthetic peptides encompassing the C-terminus of the decapeptide substrate angiotensin I. In contrast to angiotensin I-converting enzyme from plasma or lung, only angiotensin I, (des-Asp1)-angiotensin I, and (des-Asp1, des-Arg2)-angiotensin I are substrates of tonin with Km values of 34.5 muM, 39.3 muM, and 54.4 muM, respectively, while the shorter C-terminal peptides are not hydrolyzed. Thus, the N-terminal sequence extending from position 1 to 3 is the enzymatic binding site for tonin. Turnover numbers of 33.4 sec-1, 42.8 sec-1, and 6.5 sec-1 are observed for the hydrolysis of angiotensin I, (des-Asp1)-angiotensin I, and (des-Asp1, des-Arg2)-angiotensin I, respectively. The relative percentage rates of hydrolysis (proportional to V/Km) at low substrate concentrations ([S] less than less than Km) are almost identical for (des-Asp1)-angiotensin I, angiotensin I, and the tetradecapeptide substrate, indicating that these three peptides are equally good substrates at low physiological concentrations. The observed high specificity of the enzyme lends support to the possible important role of tonin for local conversion in tissue. The conversion of (des-Asp1)-angiotensin I to (des-Asp1)-angiotensin II (angiotensin III) is of particular interest in relation to the recently suggested, potential role of the latter peptide in aldosterone release.

Angiotensin II

2-deoxygalactose, a specific substrate of the Salmonella typhiimurium galactose permease: its use for the isolation of galP mutants.

2-Deoxygalactose is a specific substrate of the galactose permease. The apparent Km is about 500 micron, compared to 45 micron for galactose, whereas the maximal rate of uptake is one-half to one-third of that of galactose. None of the other galactose transport systems, including methyl beta-D-thiogalactosides I and II, the beta-methyl-galactoside permease, and both arabinose systems, is able to catalyze transport of 2-deoxygalactose to a significant extent. 2-Deoxygalactose can also be used to isolate mutants defective in galactose permease, since it is bacteriostatic. Colonies that grow with lactate, malate, or succinate as a carbon source in the presence of 0.5 to 2 mM 2-doexygalactose were found to be mostly galP mutants, lacking galactose permease. Spontaneous 2-deoxygalactose-resistant strains arose with a frequency of about 2 X 10(-6). galP mutants have also been derived from pts deletion mutants that require galactose permease for growth on glucose. Revertants have been obtained that have acquired the parental phenotype.

Biological Transport

[Activity and substrate specificity of the alcohol dehydrogenases of n-alkane oxidizing yeasts].

The activity and substrate specificity of alcohol dehydrogenases (ADH) in the fractions of cytosol and membrane particles were compared in the yeasts Torulopsis candida, Candida lipolytica and Candida tropicalis grown in media with glucose and hexadecane. In all studied yeast cultures growing in the medium with hexadecane, NAD-dependent ADH specifically dehydrogenating only medium and higher alcohols are induced in the membrane structures of the cells. Soluble ADH are found in the cytosol of the cultures grown either on glucose or on hexadecane. These ADH oxidize all alcohols with the carbon chain length from C2 to C16. As was found by electrophoresis in polyacrylamide gel, the number of ADH molecular forms in the cytosol fraction of the cultures depends on the carbon growth substrate being used and the peculiarities of yeast culture.

Alcohol Oxidoreductases

Substrate specificity of antinuclear antibodies in scleroderma.

Studies of antinuclear antibodies (ANA) were carried out in 39 cases of systemic scleroderma and for comparison in 19 cases of systemic lupus erythematosus (SLE) and 4 of mixed connective tissue disease (MCTD) using indirect immunofluorescence (IF) methods under standard conditions. The results on three different substrates--monkey esophagus, guineapig lip and rat liver--are reported. In 48.7% of scleroderma cases ANA showed a substrate specificity. The highest percentage of positive results in scleroderma was obtained on monkey esophagus (97.4%) and the lowest on rat liver (61.5%). In SLE and MCTD, in contrast, only about 13% of the sera displayed such specificity. If only sera with substrate specificity are considered, the positive results on monkey esophagus and rat liver are 94.7% and 21.1%, respectively. Titers of sera reacting positively on 2 or 3 substrates were mostly in agreement, although some sera both in systemic scleroderma and SLE showed higher titers on monkey esophagus. The IF pattern was usually the same regardless of the substrate, Tests for ANA in scleroderma should be performed on at least 2 substrates simultaneously.

Adult

Substrate-induced conformational changes in lactate dehydrogenase. Proteolysis of the immobilized enzyme in the presence of specific substrates.

We report here a new approach to the study of the conformation of enzymes in the presence of specific substrates. Rabbit muscle lactate dehydrogenase was attached to CL-Sepharose via a cleavable spacer arm (-NH-(CH2)6NHCO(CH2)2SS(CH2)2CO-). The bound lactate dehydrogenase was digested with subtilisin BPN' in the presence of substrates of lactate dehydrogenase. The use of a flow system permits the maintenance of saturating levels of substrates. Proteolysis was followed by loss of activity of the enzyme column. The time course of proteolysis in the presence of either NADH, NAD+, or pyruvate alone did not differ from the control. However, when NADH and pyruvate were present simultaneously, the enzyme became more susceptible to proteolysis. The initial rate of proteolysis was increased by 40%. The abortive ternary complex (lactate dehydrogenase - NAD+ - pyruvate) also showed an increase in susceptibility to proteolysis. These findings clearly show that the productive ternary complex (lactate dehydrogenase - NADH - pyruvate) is conformationally different from the apoenzyme and binary complexes under optimal catalytic conditions.

Enzymes, Immobilized

Dephosphorylation of purine mononucleotides by alkaline phosphatases. Substrate specificity and inhibition patterns.

Three purine mononucleotides, adenosine-, inosine- and guanosine monophosphate, were used as substrates at pH 7.4 and at 10.4 for three alkaline phosphatases (orthophosphoric-monoester phosphohydrolase (acid optimum), EC 3.1.3.1) containing similar phosphate-binding serine groups at their esteratic sites. Substrate specificity was found for the enzymes from calf intestine and bovine liver. Alkaline phosphatase from Escherichia coli was nonspecific. A substrate-dependent and pronounced inhibition with the purine analogue 1,3-dimethyl xanthine was found for the enzymes from intestine and liver, but not for alkaline phosphatase from E. coli. A substrate-independent and pronounced inhibition was found for all three enzymes with the phosphomonoester p-nitrophenol phosphate as the inhibitor. Alkaline phosphatases may play an important role in the regulation of the intracellular content of purine mononucleotides.

Adenosine Monophosphate

Further characterization of phosphatase activities using non-specific substrates.

The demonstration of non-lysosomal acid phosphatase has been the subject of a number of recent investigations. In the present study we compared the enzyme activities in rat liver and kidney that are revealed after incubation in the presence of either beta-glycerophosphate, p-nitrophenylphosphate or phenylphosphate at varying pH. As seen by others, the activity towards p-nitrophenylphosphate at pH 5-6 was confined to lysosomes, Golgi apparatus, endoplasmic reticulum (ER), nuclear envelope and plasmalemma. The reactivity of the plasmalemma and the ER was increased at pH 7. The TER of Küpffer cells in the liver stained intensely in contrast to the ER of the parenchymal cells, which stained only weakly. In the presence of NaF, all sites except the plasmalemma became negative. Addition of a levamisole-analogue, L-p-bromotetramisole, which is a specific inhibitor of alkaline phosphatase, resulted in the disappearance of the plasmalemmal activity whereas the activity at the other sites appeared unaltered. The rather unusual locations of activities with so-called non-specific substrates were further compared with those obtained with specific substrates such as glucose-6-phosphate and thiamine pyrophospate. The possible implication of these data in relation to the specificity of marker-enzymes for subcellular organelles is discussed.

Animals

New formamidase having substrate specificity for o-formylaminoacetophenone in pig liver.

The supernatant (13 000 x g, 20 min) of pig liver homogenate was filtered with Sephadex G-200 and formamidase (aryl-formylamine amidohydrolase, EC 3.5.1.9)activity in each fraction was measured. When formylkynurenine was used as substrate, two peaks of formamidase activity were observed but, with formylaminoacetophenone as substrate, only one peak was observed. Formamidase in the lower molecular weight fraction is known as kynurenine formamidase (FA I), formamidase found here in the higher molecular weight fraction has not been previously reported. This form, designated FA II has been purified about 160-fold from pig liver. The formamidase obtained has substrate specificity for o-formylaminoacetophenone only and could not hydrolyze formylkynurenine. The optimal pH was 8.5 and the Km for o-formylaminoacetophenone was 1.66-10(-3) M. This formamidase was considered to be a new enzyme and was different from FA I in molecular weight and substrate specificity. This new formamidase was present in pig, rabbit and guinea pig liver and not present in rat or mouse liver.

Acetophenones

Sodium-potassium adenosine triphosphatase activity of human lymphocyte membrane vesicles: kinetic parameters, substrate specificity, and effects of phytohemagglutinin.

We have prepared human blood lymphocyte membrane vesicles of high purity in sufficient quantity for detailed enzyme analysis. This was made possible by the use of plateletpheresis residues, which contain human lymphocytes in amounts equivalent to thousands of milliliters of blood. The substrate specificity and the kinetics of the cofactor and substrate requirements of the human lymphocyte membrane Na+, K+-ATPase activity were characterized. The Na+, K+-ATPase did not hydrolyze ADP, AMP, ITP, UTP, GTP or TTP. The mean ATPase stimulated by optimal concentrations of Na+ and K+ (Na+, K+-ATPase) was 1.5 nmol of P(i) hydrolyzed, microgram protein-1, 30 min-1 (range 0.9-2.1). This activity was completely inhibited by the cardiac glycoside, ouabain. The K(m) for K+ was approximately 1.0 mM and the K(m) for Na+ was approximately 15 mM. Active Na+ and K+ transport and ouabain-sensitive ATP production increase when lymphocytes are stimulated by PHA. Na+, K+-ATPase activity must increase also to transduce energy for the transport of Na+ and K+. Some studies have reported that PHA stimulates the lymphocyte membrane ATPase directly. We did not observe stimulation of the membrane Na+, K+-ATPase when either lymphocytes or lymphocyte membranes were treated with mitogenic concentrations of PHA. Moreover, PHA did not enhance the reaction velocity of the Na+, K+-ATPase when studied at the K(m) for ATP, Na+, K+ OR Mg++, indicating that it does not alter the affinity of the enzyme for its substrate or cofactors. Thus, our data indicate that the increase in ATPase activity does not occur as a direct result of PHA action on the cell membrane.

Cell Membrane

Substrate specificity of monoamine oxidase in pig liver mitochondria.

In pig liver both the A and the B form of monoamine oxidase (MAO) were found to be responsible for the oxidation of 5-hydroxytryptamine (5HT), a substrate oxidised by the A form alone in most other tissues. With increasing concentrations of this substrate, the percentage of the substrate oxidised by the B form increased. The Km value of the A and the B form of MAO for 5HT was 200 microns and 2.2 mM, respectively. It is suggested that the division of the monoamines into A and B form substrates should be done on the basis of the molecular turnover numbers rather than on their activities, and that the substrate specificities of the two forms of MAO should be determined over a large range of substrate concentrations.

Animals

[Characterization of a protease from Thermoactinomyces vulgaris (thermitase). 3. Substrate specificity and properties of partially purified thermitase].

During the process of cultivation of Th. vulgaris several proteases are formed. In the present investigation the extensively purified major component was used. The substrate specificity was determined by means of 7 proteins, 7 amino acid esters, 5 fatty acid esters and 15 amino acid 4-nitroanilides. Among the protein substrates tested, urea denaturated hemoglobin was split best, followed by gelatin, casein, field bean protein, serum albumin and gluten. The weakest rate of hydrolysis was observed with elastin. In contrast to this acetyl-(L-ala)3-methylester, that is a substrate for elastase, was split best from all the esters tested. Only 8% of this activity could be found with the chymotrypsin substrates acetyl-L-tyr-ethylester and acetyl-L-phe-ethylester and 1% of the above activity with the trypsin substrates tosyl-L-arg-methylester and benzoyl-L-arg-methylester. The fatty acid esters and the p-nitroanilides were hydrolyzed much more slowly. The pH-optimum of thermitase was found in the weakly alkaline region of pH 7 to 9. There were only small differences between the individual high and low molecular substrates. The temperature optimum was between 60 and 75 degrees C for esters and p-nitroanilides as substrates and at 90 degrees C for casein. It should be mentioned that the enzyme was quickly inactivated at temperatures above 70 degrees C.

Hydrogen-Ion Concentration

[Isolation and substrate specificity of neomycin (paromomycin)--phosphotransferase from Actinomyces fradiae, a producer of neomycin].

Neomycin (paromomycin) phosphotransferase was isolated from the mycelium and fermentation broth filtrates of Act. fradiae. The substance was partially purified by means of fractionation with ammonium sulphate followed by gel-filtration through Sefadex G-100. The extracellular and intracellular forms of the enzyme had the same substrate specificity and used only neomycin and paromomycin as substrates. The other aminoglycosides, including kanamycins A and B, lividomycin and ribostamycin were not used. The both forms had the same thermolability. The intracellular form of the enzyme was detected in the mycelium at the early stages of the organism development, while the extracellular form was found in detectable amounts in the culture medium only at the late stages of the actinomycete development. Therefore, the neomycin-producing organism, i.e. Act. fradiae had one enzyme which phosphorilated neomycin and paromomycin and was excreted from the mycellium into the culture medium during the fermentation process.

Adenosine Triphosphate

The substrate specificity of yeast hexokinase: reaction with D-arabinose oxime.

By chromatography, electrophoresis, n.m.r. spectroscopy, and spectrophotometric assay, it has been shown that D-arabinose oxime acts as a weak substrate for yeast hexokinase. The enzyme-catalysed phosphorylation of the oxime, which exists as a mixture of E (80%) and Z (20%) acyclic forms in solution at equilibrium, is proposed to proceed via the transient formation of a furanoid species. Weak substrate-activity was also observed with 4-deoxy-D-xylo-hexose, but not with 5-deoxy-D-xylohexose. The relation of these and previous results concerning the carbohydrate-substrate specificity of yeast hexokinase in solution to X-ray crystallographic studies is discussed.

Arabinose

Modification of the substrate specificity of rat hepatic lipase by collagenase treatment.

Collagenase is currently used in the isolation of rat hepatocytes, but it rapidly inactivates the heparin-releasable triacylglycerol lipase of the liver. Since collagenase-isolated liver cells contain a heparin-releasable monoacylglycerol hydrolase, a study was made on the effect of collagenase treatment on the substrate specificity of purified heparin-releasable lipase of rat liver. Incubation of the purified lipase with collagenase selectively decreased the triacylglycerol lipase activity of the enzyme with no effect on the monoacylglycerol hydrolase activity. Gel filtration of the lipase before and after collagenase treatment indicated cleavage of a small molecular weight fragment from the enzyme. This resulted in a preparation with less triacylglycerol lipase activity but still capable of monoacylglycerol hydrolysis.

Animals

Studies on the substrate specificity of Taka-amylase A1. XIV. Preparation of 6-deoxy-6-halogenomaltotrioses and their hydrolysis by Taka-amylase A.

1. O-6-Deoxy-alpha-D-glucopyranosyl-(1 leads to 4)-O-alpha-D-glucopyranosyl-(1 leads to 4)-D-glucopyranose, O-6-chloro-6-deoxy-alpha-D-glucopyranosyl-(1 leads to 4)-O-alpha-D-glucopyranosyl-(1 leads to 4)-D-glucopyranose, O-6-bromo-6-deoxy-alpha-D-glucopyranosyl-(1 leads to 4)-O-alpha-D-glucopyranosyl-(1 leads to 4)-D-glucopyranose, and O-6-deoxy-6-iodo-alpha-D-glucopyranosyl-(1 leads to 4)-O-alpha-D-glucopyranosyl-(1 leads to 4)-D-glucopyranose were prepared, taking advantage of the substrate specificities of Taka-amylase A and glucoamylase, and the action of Taka-amylase A on these substrates was investigated. 2. The Michaelis constant Km and the molecular activity ko were determined at 37 degrees C and pH 5.2 using the modified maltotrioses. The values of Km and ko decreased upon modification of maltotriose and those of ko/Km were in agreement with the comparative initial rates for the corresponding derivatives of phenyl alpha-maltoside at low substrate concentrations. This result suggested that a subsite of the enzyme may have a specific interaction with halogen atoms in the substrate. 3. All halogenomaltotrioses examined showed substrate inhibition at high substrate concentrations.

Amylases

Salmonella phage glycanases: substrate specificity of the phage P22 endo-rhamnosidase.

Interaction between phage P22 and phenol-water extracted lipopolysaccharides from sensitive Salmonella bacteria belonging to serogroups A, B and Di results in hydrolysis of the alpha-L-rhamnosyl linkages within the tetrasaccharide repeating unit of the O-antigenic polysaccharide chain. These O-antigens have identical structures except for the nature of the 3,6-dideoxy-hexosyl group linked to O-3 of the D-mannosyl residue. Removal of the dideoxysugar, or periodate oxidation followed by borohydride reduction of the L-rhamnosyl residue made the O chain resistant to the endo-rhamnosidase. Substitution of the D-galactosyl residue at O-4, but not at O-6, with an alpha-D-glucosyl group was compatible with hydrolysis. A number of Klebsiella pneumoniae and Shigella flexneri lipo- or capsular polysaccharides containing chain L-rhamnosyl residues were tested but none was sensitive to the P22 endo-rhamnosidase. The substrate specificity of the endo-rhamnosidase parallels the lytic specificity of the phage which suggests that the initial step in phage P22 infection is a P22 tail enzyme O-antigen substrate interaction. The main product of the hydrolysate was octa-, dodeca- and hexadecasaccharides. Treatment of phage FO resistant smooth strains of S. typhimurium with P22 tails removed O polysaccharide chains and made previously 'hidden' FO receptors accessible to the phage.

Glycoside Hydrolases

Regulation of the fatty acid composition of alkyl ether phospholipid in Ehrlich ascites tumor cells. The substrate specificities of 1-O-alkylglycerol 3-phosphate and 1-O-alkylglycero-3-phosphocholine acyltransferases.

Activity for the acylation of 1-O-alkyl-GP was found in the microsomes of Ehrlich ascites tumor cells. The reaction product was shown to be 1-O-alkyl-2-acyl-GP by identifying the acetolysis product as 1-O-alkyl-2-acyl-3-acetylglycerol. The acyl transfer activity to 1-O-alkyl-GP was significantly lower than that to 1-acyl-GP. The substrate specificity of 1-O-alkyl-GP acyltransferase was rather broad as regards thiol esters. Similar specificity was observed with 1-acyl-GP acyltransferase. In contrast to these acyltransferase systems, the 1-acyl- and 1-O-alkyl-GPC acyltransferases were specific for polyunsaturated fatty acyl-CoA's. Since a high percentage of polyunsaturated fatty acid and a little palmitic acid were located at the 2-position of 1-O-alkyl-2-acyl-GPC(E), the observed specificities for acyl-COA's of these acyltransferase systems can be considered in relation to the fatty acid composition at the 2-position of 1-O-alkyl-2-acyl-GPC(E) in the cells.

Acyltransferases

Substrate specificities of the two genetically distinct human brain beta-galactosidases.

The two human brain beta-galactosidases were solubilized and fractionated by Sephadex G-200 gel filtration, free from each other. Substrate specificities of the two enzymes were examined for galactosylceramide, lactosyl-[N-stearoyl]ceramide, lactosyl-[N-lignoceroyl]ceramide, galactosyl-N-acetylgalactosaminyl-[N-stearoyl]ceramide, lactosyl-[N-lignoceroyl]ceramide, galactosyl-N-acetylgalactosaminyl-[N-acetylneuraminyl]galactosyl-glucosylceramide (GMI-ganglioside), galactosyl-N-acetylgalactosaminyl-galactosyl-glucosylceramide (asialo GM1-ganglioside), and 4-methylumbelliferyl beta-galactoside. Under appropriately optimized conditions, either of the two beta-galactosidases could hydrolyze all of the substrates, although with widely varying rates. Relative specific activities of galactosylceramide beta-galactosidase toward galactosylceramide, lactosyl-[N-steroyl]ceramide, lactosyl-[N-lignoceroyl]ceramide. GM1-ganglioside, asialo GM1-ganglioside, and 4-methylumbelliferyl beta-galactoside were 100, 510, 250, 39, 41 and 120, respectively. Relative specific activities of GM1-ganglioside beta-galactosidase toward the same series of the substrates were 0.3, 78, 19, 100, 150 and 240; However, the optimal assay conditions for any given natural substrate were sufficiently different for each beta-galactosidase so that diagnostic assays for the two genetic diseases due to beta-galactosidase deficiencies could be carried out in whole tissues. Since the relative distribution of the two enzymes vary greatly in different tissues, contributions by the two enzymes to degradation of the natural glycosphingolipids in vivo may well vary in different organs. These findings may have an important bearing on the biochemical pathogenesis of these genetic disorders.

Adult