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Isoelectric focusing differences in the mobility of blood and semen PGM1 bands--the role of hemoglobin as a cause.

When using isoelectric focusing for the analysis of phosphoglucomutase isoenzymes, differences between the mobility of the first locus phosphoglucomutase (PGM1) bands have been noted in blood and semen samples from the same individual. This study was thus initiated to determine whether hemoglobin is responsible for these differences. Results revealed that the mobility of the PGM1 bands in diluted hemolysate and hemoglobin-removed hemolysate was similar to that seen in non-treated seminal plasma. Further, the mobility of PGM1 bands in hemoglobin-added seminal plasma was also similar to that seen in non-treated hemolysate. Additionally, on isoelectric focusing of the pI-markers, as well as non-treated hemolysate, hemoglobin-removed hemolysate, hemoglobin-added seminal plasma, and non-treated seminal plasma, distortions of iso-pH lines, i.e., "crank" formations were seen in the lanes of the non-treated hemolysate and hemoglobin-added seminal plasma. The above findings appear to indicate that differences in the mobility of PGM1 bands in the blood and semen result from the presence of high concentrations of hemoglobin in the analyzed samples.

Hemoglobins↗

[On phenotype and genotype features of serum and erythrocyte proteins in occupation-related bronchopulmonary pathology].

Electrophoresis and isoelectric focusing assessed distribution of phenotypic and gene frequency for 7 highly polymorphic proteins in 163 patients having occupational chronic bronchitis, pneumoconiosis and bronchial asthma. Phenotypic frequency studies, when compared to the reference group, revealed significant differences in the following parameters: proteinase inhibitor, 3rd component of complement, transferrin, serum blood-group specific component, phosphoglucomutase of RBC. Gene frequency studies revealed the significant differences in 3rd component of complement (C3), transferrin (Tf) and phosphoglucomutase of RBC (PGM): the patients demonstrated increased amounts of C3 F, Tf C3 and PGM 2b alleles. The results could be used for individual forecasting the risk of occupational diseases and for choosing the individual prophylactics.

Anion Exchange Protein 1, Erythrocyte↗

Characteristics of enzymes of erythrocytes from newborn infants and adults: activity, thermostability, and electrophoretic profile as a function of cell age.

THe level of enzyme activity, the enzyme thermostability profile, and the isozyme electrophoretic pattern were determined in young and old erythrocytes from newborn infants and adults and in samples from adult individuals with increased reticulocyte counts. Cord blood samples had higher levels of enzymatic activity for 12 of the 14 enzymes measured, adenylate kinase and phosphoglucomutase being the exceptions. The largest differences in activity between newborns and adults were for glutamic oxaloacetic transaminase, hexokinase, glucose 6-phosphate dehydrogenase, and glutathione reductase, while glutamic oxaloacetic transaminase and pyruvate kinase showed the largest differences between young and old cells. The levels of activity of glutathione reductase, adenylate kinase, phosphoglucomutase, lactate dehydrogenase, phosphoglycerokinase, and glucose phosphate isomerase in cord blood samples suggest the regulation of expression of these enzymes is different in fetal erythrocytes than in erythrocytes from an adult. Differences in the thermostability profile of enzymes from cells from different sources and/or of different ages were noted for 5 of 9 enzymes. No unique electrophoretically identifiable fetal isozymes were observed, although differences in isozyme distribution and staining intensity associated with cell source and/or cell age were noted for many of the 23 enzymes examined. Many of these differences in enzyme characteristics have the potential to be confused with genetic alterations in enzyme structure and function.

Adult↗

Blood genetic markers in the Chinese of two eastern provinces.

A total of 205 Han Chinese from two eastern provinces (155 from Fujien and 50 from Hopeh) were tested for the distribution of six blood groups--A1A2BO, MN, Rhesus (CcDEe), Lewisa, Kell (Kk) and Fya--four serum proteins--albumin and haptoglobin types; transferrin and group-specific component subtypes--haemoglobin, and twelve red cell enzyme systems--glucose-6-phosphate dehydrogenase, 6-phosphogluconate dehydrogenase, lactate and malate dehydrogenases; acid phosphatase, esterate-D, glyoxalase I, adenylate kinase, glucose-phosphate isomerase, phosphoglucomutase (locus 2), and superoxide dismutase types; and phosphoglucomutase (locus 1) subtypes. The frequencies of blood groups were more or less within the reported frequencies in the Chinese. However the frequency of le was much lower in the present series. The Chinese are characterized by low p1, Ro, k, le, and a high Fya in general. P2 was lacking in the Chinese. There were some differences in the blood group frequencies in the two provinces. The frequencies of Hp alleles; Tf and Gc subtypes show characteristic mongoloid features with high Hp1, TfD, and GcIF. The frequency of TFC2 was higher in the Fujien province than that in Hopeh. At the hemoglobin locus only one Hb AD was detected, while the frequency of the beta-thalassemia trait was 0.03. No red cell G6PD deficiency or variant was detected. The distribution of red cell enzymes showed Mongoloid characteristics with low PGDC, AK2, ESD1, GLO1, and higher pa. PGM1 subtypes also had Mongoloid characteristics with lower PGM2+ and higher PGM2-. The phenotypic distribution of all the fifteen polymorphic loci was at Hardy-Weinberg equilibrium in both the Chinese populations.

Alleles↗

Biochemical changes during regeneration of sunflower (Helianthus annuus L.).

The main developmental stages in Helianthus annuus organogenesis have been studied in the sunflower hybrid "Giove". Shoot regeneration was obtained with high efficiency from mature seed cotyledons. Two-dimensional electrophoresis of protein extracts as well as the isozyme patterns of acid phosphatase, alcohol dehydrogenase, esterase, gluconate-6-phosphate dehydrogenase and phosphoglucomutase were compared during growth, callusing and regeneration. Two-dimensional protein patterns were similar, although polypeptides specific for each developmental phase could be identified. Different 2,4-dichlorophenoxyacetic acid concentrations or the sampling of specific regions of the seed did not result in significant differences in protein patterns. The activity of alcohol dehydrogenase and phosphoglucomutase appeared very low. For gluconate-6-phosphate dehydrogenase no difference, related either to the genotype or to different morphological stages, could be observed; the expression of acid phosphatase varied in a nonsystematic fashion. The isozyme pattern of esterase was related to the genotype as well as to the morphogenic phase.

Acid Phosphatase↗

Association between Rh and plasma iron binding (transferrin).

In order to establish the mechanism involved in the maintenance of the Rh polymorphism and fetomaternal compatibility relationships, we examined a sample of children from the North Area of Santiago (Chile), with respect to their growth and development patterns since 1973. This sample had shown large sib-sib segregation distortions for the Rh system. Metric variables, such as plasma protein fractions and iron, academic performance at the end of the last secondary grade and adult stature, were studied in relation to genetic markers, viz., sex, ABO, Xg, MN, Rh, haptoglobins, phosphoglucomutase, and esterase D, by means of unbalanced one way analyses of variance. Highly significant results were found for Rh phenotypes and total iron binding capacity (TIBC, transferrin). However, plasma iron did not differ significantly among Ph phenotypes. Children with the C (Rh) specificity had higher values of TIBC than non-C or c individuals (P less than 0.00001). Evolutionary considerations regarding iron transport and erythroblastosis, relationships between Rh and the transferrin receptor at the plasma membrane, and the location of the Blym-I oncogene (that shares common sequences with transferrins) close to Rh in chromosome 1 are discussed. Less significant results were found between phosphoglucomutase and stature, gamma globulin level and sex, and academic performance (history) and sex.

Analysis of Variance↗

Population genetic studies of the Aka pygmies (Central Africa): a survey of red cell and serum enzymes.

Blood samples collected in a single Pygmy tribe, the Aka, living in Bokoka district (Central African Empire) were investigated with respect to the phenotype and gene frequencies of the following 12 enzyme systems: acid phosphatase, adenosine deaminase, adenylate kinase, carbonic anhydrase, esterase D, glucose-6-phosphate dehydrogenase, malate dehydrogenase, phosphoglucomutase 1, phosphoglucomutase 2, phosphogluconate dehydrogenase, superoxide dismutase and serum cholinesterase variants (locus E1 and E2). The data obtained in the study of genetic polymorphisms of this isolated and inbred population show a specific pattern with the following characteristics: the very low frequency of PGDB and pa alleles; the existence of two rare PGM variants at the PGM2 locus, typical PGM26Pyg (4.2%) and PGM29 (0.2%); the high frequency of the pr allele (10.8%) and CAII2 (8.22%) and ESD2 genes (18.4%). Furthermore, at the G6PD locus four distinct alleles have been found: the negroid GdA- (4%) and GdA+ (16%), the common GdB+ (79.2%)--, and the rare Gd+Ibadan Austin (0.7%). Cholinesterase typings disclosed the presence of the uncommon E1f and E1s genes distributed within a single breeding unit. The results are compared with other data previously reported on South African Khoisan and some Negroid populations; the particular genetic background of Pygmies is discussed.

Black People↗

Genetic and physiochemical studies on beta-hydroxy acid dehydrogenase in Anopheles albimanus.

beta-Hydroxy acid dehydrogenase (beta-Had-2) of Anopheles albimanus was assigned to chromosome 3. The apparent sequence of loci on chromosome 3 is hexokinase-1--22--stripe--28--beta-hydroxy acid dehydrogenase-2--4--aldehyde oxidase--2--esterase-8--4--esterase-4--?--phosphoglucomutase--?--esterase-6. beta-Hydroxy acid dehydrogenase is 25 and 30 map units from phosphoglucomutase and esterase-6, respectively. The one-band electromorph of beta-Had-2 in homozygotes and the three-band type in heterozygotes suggest that the enzyme is a dimer. A variety of electrophoretic techniques and spectrophotometric analysis were used to determine if the allozymes of beta-Had-2 can be differentiated on a basis other than mobility. No differences were detected among the allozymes on the basis of thermostability, urea denaturation, response to thiol reagents, chelating agents, or changes in coenzyme and substrate concentrations. No heterogeneity within allozymes separated by electrophoresis was detected by using thermostability tests.

Animals↗

Intraspecific red cell enzyme variation in the pigtailed macaque (Macaca nemestrina).

The erythrocytes of 350 pigtailed macaques (Macaca nemestrina) were examined for electrophoretic variation of hemoglobin and 26 enzymes. Seven enzymes showed variation in more than 1% of individuals: phosphoglucose isomerase, phosphoglucomutase-1, soluble NADP-dependent isocitric dehydrogenase, peptidase A, peptidase C, 2,3-diphosphoglycerate mutase, and acid phosphatase. Variation with lesser frequency was found in soluble glutamic-oxalacetic transaminase, phosphoglycerate kinase, lactic dehydrogenase, and hemoglobin. Only eight samples were tested for esterase D, and one of these had a variant phenotype. Enzymes with no clear variation were adenylate kinase, adenosine deaminase, phosphofructokinase, hexokinase, pyruvate kinase, glyceraldehyde 3-phosphate dehydrogenase, aldolase, phosphoglycerate mutase, phosphopyruvate hydratase (enolase), phosphoglucomutase-3, and superoxide dismutase. There was father-to-son transmission of PGI, PGM-1, peptidase C, 6PGD, 2,3-DPGAM, NADP-ICD, and acid phosphatase variants, suggesting that these loci are autosomal as in man.

Alcohol Oxidoreductases↗

Genetic mapping and characterization of aldehyde oxidase of Anopheles albimanus (Diptera: Culicidae).

Aldehyde oxidase (Ao) of Anopheles albimanus Wiedemann was mapped on chromosome 3. The sequence is hexokinase-1--19.2 +/- 1.8--stripe--28.3 +/- 2.2--beta-hydroxy acid dehydrogenase--3.6 +/- 0.3--aldehyde oxidase--2.6 +/- 0.4--esterase-8--6.1 +/- 1.9--esterase-4--?--esterase-6 (phosphoglucomutase). Aldehyde oxidase is 26.1 +/- 2.5 from phosphoglucomutase and 27.2 +/- 1.6 from esterase-6. The one-band electromorph of Ao in homozygotes and the three-band type in heterozygotes suggest that the enzyme is a dimer. The isoelectric points of slow and fast allozymes are 5.5 and 4.8, respectively. A variety of electrophoretic techniques was used to determine if the allozymes of Ao can be differentiated on a basis other than mobility. The slow, fast, and hybrid genotypes were analyzed for differences in thermostability, reactivity to thiol reagent, susceptibility to urea denaturation, substrate specificities, and response to chelating agents. The relative effect of p]H on allozymes was tested by varying the pH of the staining buffer over a range of 4-12. No significant differences were detected among allozymes and no additional allelic variations were observed.

Aldehyde Oxidase↗

The synthesis of mannose 1-phosphate in brain.

The interconversion of mannose-6-P and mannose-1-P in brain has been shown to be catalyzed by a distinct enzyme. The enzyme has been separated from most of the phosphoglucomutase activity of the brain. The residual phosphoglucomutase activity (less than 1%) may be associated with phosphomannomutase itself. Mannose-1,6-P2 or glucose-1,6-P2 is required for the reaction as well as a divalent cation (Mg2+ greater than Co2+ greater than Ni2+ greater than Mn2+). Glucose-1-P, glucose-6-P, and 2-deoxyglucose-6-P are also substrates or inhibitors. Other phosphorylated sugars tested, glucosamine-6-P, N-acetylglucosamine-6-P, galactose-6-P, fructose-6-P, ribose-5-P, and arabinose-5-P, do not affect the rate of the reaction when assayed in the presence of mannose-6-32P.

Animals↗

The effects of lauryl maltoside on the reactivation of several enzymes after treatment with guanidinium chloride.

The present study confirms the previous reports that detergents can facilitate the reactivation of guanidinium chloride (GdmCl) denatured rhodanese (Tandon, S. and Horowitz, P. (1986) J. Biol. Chem. 261, 15615-15618; Tandon, S. and Horowitz, P. (1987) J. Biol. Chem. 262, 4486-4491). Here, we report the effect of the detergent, lauryl maltoside, on the reactivation of several enzymes other than rhodanese. For this study we used five different enzymes each having a single polypeptide chain, namely: adenosine deaminase; 3-phosphoglyceric phosphokinase; myokinase; 3 alpha-hydroxysteroid dehydrogenase; and phosphoglucomutase. The regain of enzyme activity was used to monitor refolding. Like rhodanese, these enzymes were denatured in 6 M GdmCl and diluted into a buffer containing various concentrations of lauryl maltoside. The effect of lauryl maltoside on reactivating these proteins depended on the specific enzyme used. For example, in the presence of lauryl maltoside, reactivation of adenosine deaminase increased to 98%, while phosphoglucomutase could not be reactivated significantly. The critical micelle concentration (CMC) of lauryl maltoside was measured under the present experimental conditions using 2-(p-toluidinyl)naphthalene 6-sulfonate (TNS) as an apolar fluorescent probe, and gave a value of 0.085 mg.ml-1 in 10 mM sodium phosphate (pH 7.4). The reactivating effect of lauryl maltoside was not generally related to its CMC. In some cases an induction period was observed before the enzyme attained its steady-state velocity. This might suggest the presence of intermediate(s) in the refolding pathway that could have been stabilized by the detergent. These findings indicate that 'non-denaturing' detergents may be useful for assisting reactivation of enzymes, although the optimum conditions will have to be determined for each individual case.

Enzyme Inhibitors↗

Minimizing false positive diagnoses in newborn screening for galactosemia.

Heat and humidity, rather than summertime heat alone, cause extensive loss of galactose-1-phosphate uridyltransferase activity in mailed blood spots and seem to account for false positive diagnoses of galactosemia. The spots are partially protected from the effects of atmospheric humidity if they are allowed to dry and then are sealed in a plastic freezer bag before being exposed to higher humidity. Conversely, extensive loss of transferase activity occurs if the samples are sealed in the bags before the spots are dry. The fluorescence from transferase activity can be monitored with greater sensitivity fluorometrically than visually. A simultaneous fluorometric determination of phosphoglucomutase activity reveals whether decreased transferase activity represents sample deterioration or galactosemia. Mg2+ and a sulfhydryl agent, such as dithiothreitol, are needed for activity of phosphoglucomutase, an enzyme in the sequence leading to the fluorescent substance (NADPH). They must be added in certain modifications of the assay.

Dithiothreitol↗

Carbohydrate metabolism in two apple genotypes that differ in malate accumulation.

In the apple variety 'Usterapfel', there are two known genotypes, which differ in malic acid content. One hundred days after full bloom, low-acid fruit (LA-fruit) contained 125 micromolg(-1) dry matter (DW) of malate, while the high-acid genotype (HA-fruit) reached levels up to 627 micromolg(-1) DW. There was no difference in the catalytic activity of enzymes involved in malate metabolism, such as PEPcarboxylase, malate dehydrogenase, and NADP malic enzyme. After [14C]glucose incorporation into the excised tissue of either genotype, the organic acid fraction was labeled to approximately the same extent. Furthermore, uptake of [14C]malate was significantly lower in excised tissue of LA-fruit. These findings suggest that low malate content in LA-fruit is the result of a restricted ability to accumulate malate in apple parenchyma cells. The different ability to accumulate malate had a pronounced effect on overall carbon partitioning. However, the rate of respiration and the rate of malate synthesis was similar in both genotypes. In HA-fruit, the glycolytic flux through pyruvate kinase was increased to compensate for the carbon that accumulated in the vacuole as malate. Since malate storage in the LA-fruit was restricted, it was more easily available for gluconeogenesis, and was correlated with a three-times higher activity of PEPcarboxykinase. LA-fruit showed higher concentrations of ATP, which stimulated Glc6P and fructose-6-phosphate formation. The elevated hexosephosphate content led to an enhanced partitioning of carbon into starch (+40%), hemicellulose (+104%), and sucrose (+40%) in more mature fruit. The activation of carbohydrate synthesis resulted in a significant drop in glucose-1-phosphate (Glc1P). To meet the increased demand for Glc1P, the activities of neutral and acid invertase, hexokinase, and phosphoglucomutase were higher in LA-fruit. Glucose was a more versatile substrate for this metabolic route than was fructose. It was also evident that glycolytic flux in apple was dependent on glucose level, and that the reaction catalysed by phosphoglucomutase contributed to the regulation of carbon partitioning between malate and carbohydrate polymers.

Carbohydrate Metabolism↗

Estimating the genetic divergence and identification of three Trichinella species by isoenzyme analysis.

Isoenzyme-based approach was applied to compare Trichinella spiralis, T. britovi and T. pseudospiralis species. Among 13 enzyme systems examined, esterase (EST), malic enzyme (ME) and phosphoglucomutase (PGM) have been found as fully diagnostic, with no common allele in species studied. Adenosine deaminase (ADA), adenylate kinase (AK), hexokinase (HK), peptidase leucyl-alanine (PEP-C) and fructose-bis-phosphatase (FBP) have been capable of distinguishing the two species from resulting profiles. In addition, ADA, AK and PGM displayed the enzyme expression in the lowest amounts of muscle larvae in systems tested (100 larvae/100 microliters of extracts). Based on allozyme data, T. pseudospiralis has been found as the most distinct species within the group of taxa. Only a subtle genetic variability was recorded for T. pseudospiralis in which solely phosphoglucomutase exhibited variant patterns. In addition to the study of reference isolates, T. spiralis from lowland fox in Eastern Slovakia has been evidenced by use of genetic markers. This finding has proved that T. britovi is not the exclusive species parasitizing in the sylvatic ecosystem of the Slovak region.

Animals↗

Mercury selection of allozymes in marine organisms: Prediction and verification in nature.

The geographic distributions of mercury-tolerant allozyme genotypes of the enzyme phosphoglucomutase in the shrimp Palaemon elegans and the enzyme phosphoglucose isomerase in the marine gastropod Monodonta turbinata were compared in a mercury-polluted site versus several unpolluted sites on the Israeli coast of the Mediterranean sea. We conclude that in both phosphoglucomutase and phosphoglucose isomerase, the level of the mercury-tolerant allozyme genotypes was higher in the polluted as compared with the unpolluted sites. These results suggest that mercury selection is operating in nature on allozyme genotypes of these marine organisms along patterns comparable with those found previously in laboratory experiments. We suggest that the enzymes studied here display an adaptive pattern in polluted environments. Therefore, they may be used as potential indicators and monitors of marine pollution.

Journal Article↗

Unidirectional steady state rates of central metabolism enzymes measured simultaneously in a living plant tissue.

The unidirectional steady state reaction rates of several enzymes and metabolic fluxes of distinct processes were measured simultaneously in hypoxic maize root tips using two-dimensional phosphorus NMR exchange spectroscopy. A single spectrum monitors ATP synthesis and hydrolysis as well as the activities of four enzymes involved in key pathways of central metabolism: UDP-glucose pyrophosphorylase, phosphoglucomutase, hexose-phosphate isomerase, and enolase. The corresponding unidirectional reaction rates and net metabolic fluxes were calculated from spectral intensities. This method provides a unique picture, at enzyme resolution, of how metabolism reacts in a concerted fashion to changes in external parameters such as temperature and oxygen concentration. By increasing hypoxia via an increase in temperature, we measured the expected increase in glycolysis through enolase activity while total ATP synthesis settled. At the same time, we observed a net flux through phosphoglucomutase and UDP-glucose pyrophosphorylase toward carbohydrate synthesis. This result is discussed in relation to the current hypothesis on the turnover of cell walls and sucrose. This reaction also produces a net flux of pyrophosphate, which is needed by pyrophosphate:fructose-6-phosphate 1-phosphotransferase to work as a glycolytic enzyme.

Adenosine Triphosphate↗

Genome-wide analysis of substrate specificities of the Escherichia coli haloacid dehalogenase-like phosphatase family.

Haloacid dehalogenase (HAD)-like hydrolases are a vast superfamily of largely uncharacterized enzymes, with a few members shown to possess phosphatase, beta-phosphoglucomutase, phosphonatase, and dehalogenase activities. Using a representative set of 80 phosphorylated substrates, we characterized the substrate specificities of 23 soluble HADs encoded in the Escherichia coli genome. We identified small molecule phosphatase activity in 21 HADs and beta-phosphoglucomutase activity in one protein. The E. coli HAD phosphatases show high catalytic efficiency and affinity to a wide range of phosphorylated metabolites that are intermediates of various metabolic reactions. Rather than following the classical "one enzyme-one substrate" model, most of the E. coli HADs show remarkably broad and overlapping substrate spectra. At least 12 reactions catalyzed by HADs currently have no EC numbers assigned in Enzyme Nomenclature. Surprisingly, most HADs hydrolyzed small phosphodonors (acetyl phosphate, carbamoyl phosphate, and phosphoramidate), which also serve as substrates for autophosphorylation of the receiver domains of the two-component signal transduction systems. The physiological relevance of the phosphatase activity with the preferred substrate was validated in vivo for one of the HADs, YniC. Many of the secondary activities of HADs might have no immediate physiological function but could comprise a reservoir for evolution of novel phosphatases.

Catalysis↗