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Biomedical subjects

B G Harris

Publications and source records attributed to B G Harris.

At least 73 records · Page 4Linked to original sources

Electrophoretic analyses of myofibrillar proteins from the body wall muscles of Ascaris suum.

A myofibrillar protein extract has been isolated from the muscle of Ascaris suum. Two-dimensional electrophoresis of this extract revealed that the myosin light chain 1 (ALC1) migrates as 3 components with approximate isoelectric points in the range of 5.3-5.6. The most acidic component of ALC1 appeared to be phosphorylated when the myofibrillar extract was incubated for 10 s with catalytic subunit of cAMP dependent protein kinase and [gamma-32P] ATP. The myosin light chain 2 (ALC2) migrated as a single component in isoelectric focusing with an approximate isoelectric point of 5.5 Actin was resolved into 2 components with identical molecular weight but isoelectric points differing by approximatley 0.2 pH units. A protein was tentatively identified in the myofibrillar extract as tropomyosin. It migrated as a single band with an approximate isoelectric point of 5.0 and a molecular weight of 39 000. None of the troponin components could be identified in the myofibrillar extract. It is postulated that muscle contraction in A. suum muscle could be controlled by phosphorylation of myosin.

Actins↗

Purification of malic enzyme from Ascaris suum using NAD+-agarose.

Malic enzyme has been purified from Ascaris suum by polyethylene glycol precipitation, ion-exchange chromatography, ammonium sulfate precipitation, and NAD-agarose affinity chromatography to a specific activity of 80 units/mg (V/[E]t = 350 s-1). The preparation was shown to be homogeneous by SDS polyacrylamide disc gel electrophoresis. The procedure can be accomplished in a maximum of four days with a 74% yield.

Ascaris↗

Activity of enzymes regulating glycogen metabolism in perfused muscle-cuticle sections of Ascaris suum (Nematoda).

A new perfusion system has been developed in which muscle-cuticle sections of Ascaris suum were perfused, enabling study of enzymes in vitro. Using this technique the activity of the regulatory enzymes glycogen synthase and glycogen phosphorylase was determined, and the level of glycogen in the muscle was assessed. During starvation, 98% of glycogen synthase was in the inactive D-form, and 80% of the glycogen phosphorylase activity was in the active a-form. When the ascarid muscle section was perfused with 27 mM glucose, 13.1% of the glycogen synthase was in the active I-form, whereas phosphorylase a-levels dropped to 46% and glycogen was synthesized at a linear rate of 12 mg/g/hr or 1.23 mumoles/min/g muscle-cuticle. ATP levels (3.71 +/- 0.32 mM) remained unchanged over a 4-hr perfusion period with an adenylate energy charge of 0.82. Fructose supported glycogen synthesis, though not as well as glucose. Galactose, mannose, and trehalose did not support glycogen synthesis. The new perfusion system should be useful in future, similar studies on Ascaris.

Animals↗

Glycogen metabolizing enzymes during starvation and feeding of Ascaris suum maintained in a perfusion chamber.

The glycogen content of muscle was correlated with the activity of glycogen synthase and glycogen phosphorylase from the parasitic roundworm Ascaris suum maintained in vitro. Adult female worms were maintained in the laboratory in a perfusion system during periods of starvation and feeding. During starvation, the levels of glucogen decreased at a rate of 0.1 to 0.2 mumoles/min/g wet weight of muscle-cuticle. During this time, 95% of the glycogen synthase (E.C. 2.4.1.11) was in the active D-form, and 48% of the phosphorylase (E.C. 2.4.1.1) was in the active a-form. Upon feeding, the rate of incorporation of glycosyl residues into glycogen proceeded at a rate of 0.75 to 1.0 mumoles/min/g muscle-cuticle. Glycogen synthase was 22% in the active I-form and phosphorylase a-levels remained virtually unchanged at 41% as compared with the starved worm. Total levels of both enzymes remained constant over the starvation-feeding period with 3.9 units/g phosphorylase and 0.4 units/g glycogen synthase. The apparent Km value for the substrate UDPG for glycogen synthase was 0.22 +/- 0.02 mM. For glycogen phosphorylase the Km value for G-1-P was 1.76 +/- 0.38 mM.

Animals↗

Isolation and characterization of yeast nicotinamide adenine dinucleotide kinase.

NAD+ kinase (ATP:NAD+ 2'-phosphotransferase, EC 2.7.1.23) from yeast has been purified utilizing ion-exchange and NAD+-agarose affinity chromatography to give a 2100-fold purification. The apparent homogeneity of the enzyme preparation was confirmed by sodium dodecyl sulfate polyacrylamide gel electrophoresis and analytical ultracentrifugation. The enzyme has a subunit molecular weight of 31,000, and a native molecular weight of 124,000, and is, thus, probably a tetramer. The single form of the enzyme has an apparent isoelectric point of 5.85. Initial velocity studies in the forward direction with both substrates gave intersecting Lineweaver-Burk plots, and this suggests a sequential mechanism in which both substrates are bound before products are released. Replots of these data were linear and gave Km values for NAD+ and ATP of 0.68 mM and 2.3 mM, respectively.

Kinetics↗

Purification and characterization of aldolase from human erythrocytes.

A procedure has been developed for the purification of human erythrocyte aldolase (D-fructose-1,6-bisphosphate D-glyceraldehyde-3-phosphate-lyase, EC 4.1.2.1.3). The process involves a specific substrate elution of the enzyme from phosphocellulose followed by a reverse ammonium sulfate fractionation. The preparation has been shown to be homogeneous by analytical ultracentrifugation, thin-layer electrophoresis, and polyacrylamide gel electrophoresis in sodium dodecyl sulfate. The enzyme exhibits a specific activity of 16 I.U./mg protein, a Km of 7.1-10(-6) M for fructose 1,6-bisphosphate, and a substrate specificity (Fru-1,6-P2/Fru-1-P) of 40. The native protein in a tetramer of 158 000 molecular weight possessing identical or nearly identical subunits, an isoelectric point of 8.9, a diffusion coefficient of 4.68-10(-7) cm2/s, and a molecular radius of 4.56 nm. The study shows the enzyme to be a type A aldolase resembling other muscle forms in chemical and physical properties as well as amino acid composition.

Amino Acids↗

NAD+-malic enzyme. Regulatory properties of the enzyme from Ascaris suum.

The regulatory properties of the NAD-dependent malic enzyme from the mitochondria of Ascaris suum have been studied. The malate saturation curve exhibits sigmoidicity and the degree of this sigmoidicity increases as the pH is increased. Fumarate was the only compound tested that stimulated the enzyme activity, whereas oxalacetate was the most powerful inhibitor. Activation by low levels of fumarate was found to be competitive with malate. It is proposed that this stimulation has physiological significance in controlling the dismutation reaction in the parasite. The branched-chain volatile fatty acid excretion products, tiglate, 2-methylbutanoate, and 2-methylpentanoate, inhibited the enzyme activity and this inhibition was competitive with malate. The Ki values for these compounds are in the physiological range of their concentrations; therefore, it is suggested that they may aid in controlling the malic enzyme activity in vivo. Oxalacetate inhibition of malic enzyme activity was competitive with malate, and the Ki values decreased with an increase in pH. Two alternatives are proposed which could account for the lack of oxalacetate decarboxylation by the ascarid malic enzyme.

Animals↗

Ascaris suum hexokinase: purification and possible function in compartmentation of glucose 6-phosphate in muscle.

Hexokinase (EC 2.7.1.1) is present in a soluble and a bound form in homogenates of Ascaris suum muscle. Cellulose acetate electrophoresis, isoelectric focusing, and ion exchange chromatography confirmed the presence of only one molecular form of hexokinase in this muscle. A procedure for purifying hexokinase from Ascaris muscle has been developed utilizing ion-exchange chromatography, ammonium sulfate fractionation and gel filtration. The enzyme is a monomer with a molecular weight of 100 000 as determined by sodium dodecyl sulfate gel filtration. The Stokes' radius, diffusion coefficient, and frictional ratio have been determined. The apparent Michaelis constants for glucose and ATP are 4.7-10(-3) M and 2.2-10(-4) M, respectively. Ascaris hexokinase also exhibits end-product inhibition by glucose 6-phosphate and ADP. It is postulated that the kinetic parameters of the enzyme are the results of its function, that of generating glucose 6-phosphate primarily for glycogen synthesis.

Animals↗

Structure and toxicity of alkaloids and amino acids of Sophora secundiflora.

Seeds from Sophora secundiflora were extracted into three major fractions: lipids, alkaloids, and amino acids. Most of the lipid material was composed of steroid esters. These esters were hydrolyzed, and the fatty acid compositions were determined. The major alkaloid component was cytisine, with N-methylcytisine, anagyrine, and the fatty acid compositions were determined. The major alkaloid component was cytisine, with N-methylcytisine, anagyrine, and termopsine in lower concentration. The major free ninhydrin-positive compound was gamma-glutamyltyrosine. In addition to several common amino acids, pipecolic acid and 4-hydroxypipecolic acid were identified. Both the amino acid fraction and the alkaloid fractions caused minor pharmacological disorder when injected into rats. However, when both fractions were simultaneously administered, they were lethal.

Alkaloids↗