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Biomedical subjects

C J Masters

Publications and source records attributed to C J Masters.

At least 55 records · Page 3Linked to original sources

The ontogenic characteristics of lactate dehydrogenase isozymes in mammaliam pre-implantation ova.

The onotgenic characteristics of lactate dehydrogenase (LDH) isozymes in mammalian pre-implantation ova have been reviewed. Evidence has been provided that the ova of mice and other mammalian species contain enzyme activity in a masked form, and display turnover processes which possess distinctive characteristics by comparison with those in adult tissues. Also, the extraordinary high levels of LDH in the extracellular secretion of the mammaliam oviduct have been commented on, along with the influence of reproductive hormones on the activity and type of this enzyme. In addition, attention has been drawn to the unique characteristics of the oval micro-evironment, and the influence which such factors may exert on the realization of enzyme phenotype during early mammalian development.

Animals↗

Modification of the kinetic parameters of aldolase on binding to the actin-containing filaments of skeletal muscle.

The kinetic parameters of fructose bisphosphate aldolase (EC 4.1.2.13) were shown to be modified on binding of the enzyme to the actin-containing filaments of skeletal muscle. Although binding to F-actin or F-actin-tropomyosin filaments results in relative minor changes in kinetic properties, binding to F-actin-tropomyosin-troponin filaments produces major alterations in the kinetic parameters, and, in addition, renders them Ca2+-sensitive. These observations may be relevant to an understanding of the function of this enzyme within the muscle fibre.

Actins↗

Ontogenic characteristics of lactate dehydrogenase turnover in the mouse.

1. In order to investigate the ontogenic and turnover characteristics of lactate dehydrogenase (L-lactate:NAD+ oxidoreductase, EC 1.1.1.27) in the foetal mouse, activities of this enzyme and isoenzyme distributions have been measured during development, and the time sequence of incorporation of radioactive amino acids have been determined during the last weeks of gestation. 2. In the early foetal stages, the enzyme was present with low specific activity and in the form of lactate dehydrogenase-5 in all regions, but a marked increase in specific activity became evident about the seventeenth day of gestation, and was accompanied by the formation of tissue specific patterns of isoenzyme distribution. 3. Measurement of turnover parameters was undertaken by both double-label ([3H] and [14C]leucine) and pulse-chase ([3H]leucine) techniques. Both procedures provided indications that appreciable degradation may occur during embryogenesis, with general proteolysis proceeding at a faster rate than with lactate dehydrogenase, and with higher rates of degradation occurring in foetuses which were smaller than average. 4. This data has been discussed in relation to the regional variation in these characteristics and the significance to studies of growth and differentiation.

Animals↗

An electron microscope study of the interaction between fructose diphosphate aldolase and actin-containing filaments.

The interaction of fructose diphosphate aldolase with F-actin, F-actin-tropomyosin, and F-actin-tropomyosin-troponin has been studied by using negative staining. In the absence of troponin, minor aggregates of aldolase and the F-actin filaments are formed. A well-ordered lattice structure is only formed in the case of the fully reconstituted filament when the filament-to-filament spacing is 18nm, and the cross-bridge spacing is 38.7 nm. Evidence is presented that the lattice is due to an interaction between troponin and aldolase. The minimum subunit structure of troponin, still capable of giving rise to a lattice, is the troponin-IT complex, which indicates that troponin-C is not involved in aldolase binding.

Actins↗

Beef muscle troponin: evidence for multiple forms of troponin-T.

A method is described for the purification of troponin from beef skeletal muscle. The resultant preparation differs from the troponin of rabbit skeletal muscle in that it contains at least two forms of the tropomyosin-binding component, Troponin-T: these are designated as the 37 000 and 40 000 dalton forms of Troponin-T on the basis of sodium dodecyl sulphate gel electrophoresis. Either of these Troponin-T forms may be used to reconstitute troponin by mixing with the appropriate amounts of the calcium-binding (Troponin-C) and and actomyosin ATPase-inhibitory (Troponin-I) components. These reconstituted troponins are shown to interact with tropomyosin and also to confer full calcium sensitivity on actomyosin ATPase. Despite the existence of proteolysis in troponin preparations, the experimental evidence indicates that the smaller form of Troponin-T is not derived from the 40 000 dalton species by limited degradation. Although both species of Troponin-T have been found routinely in troponin from beef skeletal muscle, only the larger form is detected in troponin preparations from beef cardiac muscle. Further studies are required in order to clarify the functional significance and differential distribution of these multiple forms of Troponin-T.

Actomyosin↗

On the application of affinity chromatography to turnover studies on the lactate dehydrogenase isoenzymes.

1. The suitability of a combined application of the techniques of affinity chromatography, double labelling and gel electrophoresis in the determination of the turnover characteristics of the lactate dehydrogenase isoenzymes (L-lactate:NAD+ oxidoreductase EC 1.1.1.27) in rat tissues has been studied. 2. Affinity chromatography was established as affording the advantages of rapidity, high yield and purity to such studies, and the double-labelling procedure was modified to encompass the differential decay kinetics in the separate rat tissues. In addition, a convenient method for the resolution and separate collection of radioactively labelled isoenzymes has been described. 3. Using this methodology, comparative turnover values for the isoenzymes of lactate dehydrogenase and for total soluble protein have been determined. 4. The comparability of these results with other methodologies, and the advantages of this approach in facilitating broad comparative studies on turnover are discussed.

Animals↗

On the association of glycolytic enzymes with structural proteins of skeletal muscle.

1. The effects of protein concentration and ionic strength on the adsorption of the individual glycolytic enzymes to F-actin and F-actin--trypomyosin--troponin have been studied. 2. Appreciable association was demonstrated under conditions of physiological ionic strength and high protein concentration, and tropomyosin--troponin established as an important and generalized component of these interactions. 3. Phosphofructokinase, aldolase, pyruvate kinase, lactate dehydrogenase, glyceraldehyde-3-phosphate dehydrogenase and glucose-6-phosphate isomerase were strongly bound under these conditions, while triosephosphate isomerase, phosphoglycerate kinase, phosphoglycerate mutase, enolase and hexokinase displayed less adsorption to the structural proteins. 4. The influence of a number of parameters on the adsorption phenomena was examined. Ca2+ and fructose 1,6-diphosphate increased the adsorption of aldolase, lactate dehydrogenase and pyruvate kinase, while decreasing the adsorption of the enzymes of the constant-proportion group. 5. Of the other major enzymic components of skeletal muscle, creatine kinase, adenylate kinase and malate dehydrogenase showed no adsorption to F-actin--tropomyosin--troponin under the experimental conditions. Some adsorption was evident, however, in the case of aspartate aminotransferase, (NADP) isocitrate dehydrogenase and alpha-glycerolphosphate dehydrogenase. 6. These results have been discussed in relation to their functional significance and the roles of enzyme compartmentation in the cell.

Animals↗

Further evidence for the concept of bovine plasma arylesterase as a lipoprotein.

Purified preparations of bovine plasma arylesterase were obtained by isoelectric focusing of enzyme prepared by (NH4)2SO4 fractionation of plasma and chromatography on DEAE-cellulose and Sephadex G-200. Although the high-density-lipoprotein fraction (HDL2) of serum provides an alternative source of enzyme, the enzymic activity of preparations made from it is much less stable. The purified arylesterase preparation has a molecular weight of 440000 and a partial specific volume of 0.91 ml/g, properties indistinguishable from those of the less highly purified enzyme. Extraction with acetone and ether removes neutral lipids from the enzyme, but the resulting lipid-depleted preparation retains most of the phospholipid present initially. A partial specific volume of 0.81 ml/g and a minimum molecular weight of approx. 100000 were determined for the lipid-depleted preparations of arylesterase. The present results support the concept of bovine plasma arylesterase as a lipoprotein in its own right, rather than as an enzymic polypeptide that is loosely associated with the HDL2 fraction of serum.

Carboxylic Ester Hydrolases↗

Evaluation of equilibrium constants for the interaction of lactate dehydrogenase isoenzymes with reduced nicotinamide-adenine dinucleotide by affinity chromatography.

Rabbit muscle lactate dehydrogenase was subjected to frontal affinity chromatography on Sepharose-oxamate in the presence of various concentrations of NADH and sodium phosphate buffer (0.05 M, pH 6.8) containing 0.5 M-NaCl. Quantitative interpretation of the results yields an intrinsic association constant of 9.0 x 10 (4)M-1 for the interaction of enzyme with NADH at 5 degrees C, a value that is confirmed by equilibrium-binding measurements. In a second series of experiments, zonal affinity chromatography of a mouse tissue extract under the same conditions was used to evaluate assoication constants of the order 2 x 10(5)M-1, 3 x 10(5)M-1, 4 x 10(5)M-1, 7 x 10(5)M-1 and 2 x 10(6)M-1 for the interaction of NADH with the M4, M3H, M2H2, MH3 and H4 isoenzymes respectively of lactate dehydrogenase.

Animals↗