Mechanism of pigeon liver malic enzyme. Reactivity of class II sulfhydryl groups as a conformational probe for the "half-of-the-sites" reactivity of the enzyme with bromopyruvate.
Explore the source record for details and available documents.
SEARCH · PubMed Health
Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Explore the source record for details and available documents.
As an attempt to identify the maturation pathway of Escherichia coli RNA polymerase, the catalytic properties of core enzyme reactivated in the absence of maturation-promoting factors (sigma subunit or DNA) (that is, of self-reactivated core enzyme) were compared with those of native core enzyme. Differences have been found in the intrinsic activities such as in the template specificity, Km value of DNA template for the polymerase, activation energy for RNA synthesis, and increment of enzyme activity by sigma subunit. These observations imply that the transcription initiation by self-reactivated core enzyme is inaccurate and, therefore, more strict conditions including the presence of maturation-promoting factors are required for premature core be activated to the genuine function with the transcription specificity of native core enzyme.
An immunological method is presented which enables the determination of the specific activity of a pure enzyme without its extensive purification. The method consists essentially in the specific fixation of immunologically related enzymes to an immunoadsorbent containing specific antibodies raised against the wild-type form of the enzyme. We applied this method to determine the specific activity of plasmid-coded beta-galactosidases and to quantify the extent of cross-reaction between these enzymes and Escherichia coli beta-galactosidase.
The effects of ATP and divalent cations on a divalent cation-independent phosphorylase phosphatase of Mr = 35,000 (phosphatase S) purified from canine cardiac muscle have been studied. The enzyme can be rapidly inactivated by ATP or other nucleoside di- and triphosphates and PPi, but not by AMP, adenosine, adenine, Pi, EDTA, ethylene glycol bis(beta-aminoethyl ether)N,N' -tetraacetic acid, 1,10-phenanthroline, or 8-hydroxyquinoline. After removing the inactivating agent, such as ATP or PPi, by gel filtraiton followed by exhaustive dialysis, the inactivated enzyme (apophosphatase S) can be reactivated by preincubating with Mn2+ or Co2+, but not with Mg2+, Ca2+, Ni2+, Zn2+, Fe2+, Cu2+, Ba2+, Hg2+, Pb2+, or Cd2+. The Mn2+ -reactivated enzyme, which is less active than the Co2+ -reactivated enzyme, can be again inactivated by preincubating with ATP. The present findings indicate that phosphatase S contains a tightly bound divalent cation, probably Mn2+, in the active site. ATP and PPi, due to their structural similarity to the phosphoprotein substrate and their ability to chelate metal ions, can readily enter the active site to remove the divalent cation(s) essential for the catalytic function. The present findings also indicate that phosphatase S, a common catalytic subunit of several larger molecular forms of nospecific phosphoprotein phosphatase in cardiac muscle, can exist in two interconvertible forms, a metallized form (active) and a demetallized form (inactive). ATP and metal ions may regulate this class of isozymes by mediating the interconversions.
Histochemical investigations concerning the activity of several dehydrogenases and hydrolases in the area cinguli during postnatal ontogenic development of the rat were performed. Brain sections corresponding to the region of area cinguli, obtained from rats aged 1, 3, 8, 17, 40 and 60 days postnatal, were subjected to histochemical assays for various dehydrogenases, phosphatases and esterases. The developmental changes concerning histoenzymic reactivity of the callosal gyrus with regard to several respiratory and hydrolytic enzymes were assessed and described. Considerable differences in enzymic reactivity, appertaining particularly to the phosphatases and esterases, between the anterior and posterior parts of the callosal gyrus were found. The unusual enzymic reactivity of glial cells in the individual regions of the area cinguli has been pointed out.
Affinity labeling of yeast and B. stearothermophilus phosphoglycerate kinases with a reactive AMP analog, N6-(p-bromoacetaminobenzyl)-AMP was examined. Complete loss of enzyme activity was observed when 1 mol of the reagent had reacted per mol of either enzyme. Results on the effect of pH and substrate addition on the inactivation, titration of SH groups before and after modification, and kinetic studies with AMP analogs suggest that the modification occurs at one amino group at or near the substrate binding site. General affinity labeling of kinases is discussed based on the results obtained.
Rabbit muscle glyceraldehyde 3-phosphate dehydrogenase (GPD) and myokinase (MK) were rapidly inactivated by a reactive AMP analog, N6-(p-bromoacetaminobenzyl)-AMP, under mild conditions. Complete inactivation was observed when 4 and 0.3 mol of the reagent with respect to enzyme were reacted with GPD and MK, respectively. The inactivation of both enzymes were favored at higher pH and the enzymes were protected by addition of adenine nucleotide substrate. Modified GPD or MK had no affinity for AMP-Sepharose, in contrast to the native enzymes. From these results, the inactivation of GPD and MK by the reactive AMP analog can be regarded as an affinity labeling. The posibility that the present AMP analog may be used as a general affinity labeling reagent for various adenine nucleotide-related enzymes is discussed based on the results obtained.
The predominant inhibitors of granulocyte proteases in plasma (alpha1-antitrypsin, alpha1-antichymotrypsin, and alpha2-macroglobulin) were quantitated in unconcentrated bronchial lavage fluids obtained from non-infected individuals, together with the acid-stable low molecular weight inhibitor with activity against granulocyte elastolytic and chymotrypsin-like enzymes. This latter inhibitor accounted for about 90% of the total molar concentration of granulocyte protease inhibitors in the bronchial lavage fluids. The remaining 10% consisted mostly of alpha1-antitrypsin and alpha1-antichymotrypsin. About 85% of the bronchial inhibitor was in a free form with preserved enzyme reactivity. The remaining 15% of the immunoreactive bronchial inhibitor exhibited a molecular size indicating complexation with enzymes. The major portion of alpha1-antitrypsin and alpha1-antichymotrypsin showed electrophoretic mobilities and molecular sizes similar to the native proteins but had no enzyme reactivity.
This paper establishes a quantitative technique for measuring the percentage of enzyme-reactive cells found in adjuvant arthritic articular cartilage, synovial membrane and bone marrow. Using alkaline phosphatase histochemistry and a recently-developed method of handling hard tissues, the technique is validated, the inherent variabilities determined and the existence of intra-articular lesions established. The technique now allows for a precise in situ evaluation of adjuvant arthritic drug inhibition by measuring enzyme-reactive cell alterations within the joint tissue most affected by the arthritis.
The activity of taurine: alpha-ketoglutarate aminotransferase (taurine: 2-oxoglutarate aminotransferase, EC 2.6.1.55) from Achromobacter superficialis is significantly diminished by treatment of the enzyme with (NH4)2SO4 in the course of purification, and recovered by incubation with pyridoxal phosphate at high temperatures such as 60 degrees C. The inactive form of enzyme absorbing at 280 and 345 nm contains 3 mol of pyridoxal phosphate per mol. The activated enzyme contains additional 1 mol of pyridoxal phosphate with a maximum at 430 nm. This peak is shifted to about 400 nm as a shoulder by dialysis of the enzyme, but the activity is not influenced. The inactive form is regarded as a partially resolved form, i.e. a semiapoenzyme. The enzyme catalyzes transamination of various omega-amino aicds with alpha-ketoglutarate, which is the exclusive amino acceptor. Hypotaurine, DL-beta-aminoisobutyrate, beta-alanine and taurine are the preferred amino donors. The apparent Michaelis constants are as follows; taurine 12 mM, hypotaurine 16 mM, DL-beta-aminoisobutyrate 11 mM, beta-alanine 17 mM, alpha ketoglutarate 11 mM and pyridoxal phosphate 5 micron.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
H-Meromyosin (HMM) was digested with insoluble papain [EC 3.4.22.2]. Neither the size of the initial burst of Pi liberation (0.5 mole/mole of myosin head) nor the Mg2+-ATPase [EC 3.6.1.3] activity of HMM in the steady state was affected by this treatment. Acto-S-1 was obtained by mixing F-actin with HMM digested with insoluble papain (HMM-S-1). The size of the initial burst of Pi liberation of acto-S-1 was 0.35 mole/mole of S-l at an ATP concentration of 0.5 mole/mole of S-1, and 0.5 mole/moleof S-1 at ATP concentrations above 1 mole/mole of S-1...
F-Actin (FA) and pyruvate kinase (PK) [EC 2.7.1.40] were immobilized on PAB-cellulose. HMM-Subfragment-1 (S-1) was applied to a column of immobilized FA and PK, and eluted with 1-1.5 muM ATP and 1 mM PEP in 50 mM KCl, 2 mM MgCl2, and 10 mM Tris-HCl at pH 7.8 and 4 degrees. The size of the initial burst of Pi liberation of S-1 applied to the column was 0.5 mole/mole S-1. The burst size of S-1 decreased with increase in the fraction number, and S-1 in later fractions showed a burst size of 0.1-0.3 mole/mole. On the other hand, the rate of the ATPase [EC 3.6.1.3] reaction in the steady state was almost independent of the burst size, and increased slightly with increase in the fraction number. The ATPase activity of S-1 with a burst size of less than 0.2 mole/mole was scarcely activated by FA. Usually, the dependence on the burst size of S-1 of its ATPase activity in the presence of FA was sigmoidal, and marked activation by FA was observed when the burst size was larger than 0.3-0.4 mole/mole. Similar results were obtained with S-1 fractions separated by the ultracentrifugation method described in our previous paper ((1976) J. Biochem. 79, 419-434).
A nuclease inhibitor found in the mycelia of Aspergillus oryzae has been purified 158,000-fold by ammonium sulfate precipitation, chromatography on Sephadex G-75, DEAE-Sephadex A-50 and Bio-Gel p-60 columns, preparative disc electrophoresis on acrylamide gel, and electrofocusing in ampholite. The purified inhibitor is nearly homogeneous as judged by disc electrophoresis. It shows a typical ultraviolet absorption curve for protein, and the inhibitory activity is inactivated by chymotrypsin. The inhibitor and nuclease O (EC 3.1.4.9, a crystalline enzyme from the mycelia of the same organism) form a stable enzyme inhibitor complex. The molecular weights of nuclease O, the inhibitor and the enzyme inhibitor complex are estimated to be 46,000, 22,000 and 73,000 respectively, by Sephadex G-100 gel filtration. The isoelectric points of the enzyme and the inhibitor are 10.0 and 4.09, respectively, as determined by electrofocusing in ampholite. The inhibition is noncompetitive, and the inhibitor constant (K1) is 3.2 X 10(-12) M, whereas the Michaelis constant (Km) for DNA is 2.2 X 10(-8) M. The inactive enzyme-inhibitor complex is reactivated by chymotrypsin through inactivation of the inhibitor. The reactivated enzyme can be inactivated again by the inhibitor, which shows that desensitization of the enzyme does not occur by the action of chymotrypsin.
Alkaline phosphatase (enzyme) reactivation was studied in liquid milk products heated to 87.8 to 121.1 C for less than 1 s in a continuous, two-phase, slug-flow heat exchanger. The effects of magnesium concentration, pH, incubation temperature, homogenization pressure, processing temperature, fat content, and initial enzyme concentration were investigated. Jersey milk from one farm showed seasonal variations in enzyme concentration and its reactivation behavior. Increased reactivation in products with high fat content was due to high initial enzyme concentration in the product. Homogenization of products before heating decreased reactivation. Maximum reactivation occurred in products heated to 104.4 C, incubated at 34 C, and adjusted to pH 6.5. Maximum velocity of reactivation and reactivation constant varied with milk samples. Activation energy for the control and samples with magnesium was 22.646 +/- .118 and 24.100 +/- .210 kJ mole-1, respectively. The enzyme from raw and reactivated cream contained two major isozymes, and the reactivated isozyme differed from the control. The official method for differentiating residual and reactivated enzymes was modified in terms of magnesium concentration and extent of reactivation of the enzyme in the reactivated product.
The presence of two cysteine residues per each six monomers comprising the oligomer of Chlorella glutamine synthetase (E.C.6.3.1.2) is demonstrated using homogenous enzyme preparation. p-Chloromercuribenzoate (p-CMB) is found to inhibit glutamine synthetase activity, the degree of inhibition depending on the inhibitor concentration. The following enzyme reactivation by dithiotreitol (10(-2) M) was observed only when the enzyme was inactivated with 10(-5) M p-CMB under 15 min. preincubation. Preincubation of the enzyme with 10(-4) M p-CMB for 45 min. did not result in its reactivation. Gel filtration of glutamine synthetase treated with 10(-4) M p-CMB has revealed the dissociation of the enzyme into inactive monomers. Incubation of glutamine synthetase with p-CMB at various pH values, incubation after pre-treatment with urea and experiments with HgCl2 indicate the presence of free and masked inside the globula SH-groups in the enzyme molecule. Competitive character of the enzyme inhibition with p-CMB with respect to ATP indicates that SH-groups of the active site participate in the ATP binding, probably, as Mg-ATP or Mn-ATP complexes. Data on the estimation of ionization constant of glutamate-binding group and experiments on the effect of histidine photooxidation on the enzyme activity indicate the presence of histidine residue in the enzyme active site, which participates in glutamate binding.