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E Bellion

Publications and source records attributed to E Bellion.

11 recordsLinked to original sources

Methanol oxidation and assimilation in Hansenula polymorpha. An analysis by 13C n.m.r. in vivo.

The metabolism of methanol was monitored in whole cells of the methylotrophic yeast Hansenula polymorpha by using [13C]methanol and n.m.r. in vivo. The main products observed under normal conditions were trehalose and glycerol, whereas cells that were starved before exposure to [13C]methanol also accumulated glutamate, glutamine and alanine; formate was also more prominent in spectra from starved cells. Cells exposed to high methanol concentration together with high oxygenation oxidized methanol extensively, leading to formaldehyde accumulation; label was not found in any subsequent metabolic products, indicating possible cell inactivation. [13C]Formate was incorporated into metabolic products in glucose-grown cells exposed to 150 mM-methanol for 3 h, but not in cells starved for 3 h, in which it was oxidized. At 21 degrees C such 3 h-starved cells showed a slower metabolism of [13C]methanol compared with those at 37 degrees C, and also converted methanol into formate rather than into assimilation products. The labelling pattern in trehalose from starved cells at 37 degrees C was consistent with methanol assimilation via the pentose phosphate pathway. Lack of appearance of labelled formaldehyde and formate during metabolism under normal conditions suggests that the linear oxidation pathway is not a major contributor to methanol oxidation; their appearance in extreme conditions suggests instead a more likely role in detoxification.

Carbon Isotopes

ATPase activities in peroxisome-proliferating yeast.

Preliminary studies on yeast peroxisomes have suggested that the membrane of these organelles may contain a proton-pumping ATPase. It has been reported that peroxisome-associated activity is similar to the F0-F1 mitochondrial type ATPase in its sensitivity to azide at pH 9.0, but characteristics of the plasma membrane type ATPase are also evident in peroxisomal preparations in that they exhibit pH 6.5 activity that is sensitive to vanadate. A comparative study of the prominent organellar ATPase activities was undertaken as a probe into the existence of an enzyme that is unique to the peroxisome, and biochemical properties of yeast mitochondrial, plasma membrane, together with peroxisomally-associated H(+)-ATPases are presented. Enzyme marker analysis of sucrose gradient fractions revealed a high degree of correlation between the amount of azide-sensitive pH 9.0 ATPase activity and that of the mitochondrial membrane marker, cytochrome c oxidase, in peroxisomal preparations. Purified mitochondrial and peroxisomally-associated activities were highly sensitive to the presence of sodium azide, N,N' -dicyclohexylcarbodiimide (DCCD) and venturicidin when measured at pH 9.0. Comparisons of peroxisomal activities with those of the purified plasma membrane at pH 6.0 in the presence of azide showed similar sensitivity profiles with respect to inhibitors of yeast plasma membrane ATPases such as vanadate and p-chloromercuriphenyl-sulfonic acid (CMP). Purified peroxisomal membranes, furthermore, reacted with antibody to the mitochondrial F1 subunit (as revealed by Western blot analysis), and [35S] methionine-labeled, glucose-grown cells processed with unlabeled methanol-grown cells, yielded sucrose gradient fractions that were radioactive in bands that were also recognized by F1 antibody. Isolated fractions in these experiments had similar ratios of cpm:pH 9.0 ATPase activities, suggesting that this activity is mitochondrial in origin. The data presented for the characteristics of the peroxisomally-associated activity strongly suggest that the majority of the ATPase activity found in peroxisomal preparations is derived from other organelles.

Adenosine Triphosphatases

In vivo 13C and 15N NMR studies of methylamine metabolism in Pseudomonas species MA.

Pseudomonas species MA was grown with methylamine as a sole source of carbon and nitrogen enabling the total flow of carbon and nitrogen into this organism to be simultaneously monitored in vivo using 13C and 15N NMR. [13C]Methylamine was rapidly and extensively incorporated into the methyl group of N-methylglutamate during high oxygenation of the cell suspension, but when the oxygenation rate was lower, a significant portion was also found in the methyl group of gamma-glutamylmethylamide. At later times the carbon label was found in intermediates of the serine assimilation pathway, with glutamate derived from the tricarboxylic acid cycle being the most abundant product. Incorporation of [15N]methylamine was only detected as N-methyl[15N]glutamate, but when protein synthesis was inhibited, the label was also detected in the amino nitrogen of glutamate. When oxygenation rates were lower, the 15N-labeled methylamine was found in the methylamide group of gamma-glutamylmethylamide in addition to being incorporated into N-methylglutamate. gamma-Glutamylmethylamide formation was linked to the overall energy state of the cell and was not affected by inhibition of the carbon assimilation pathway. Neither 5-hydroxy-N-methylpyroglutamate nor N-methyl-alpha-ketoglutaramate were detected to any significant extent. A mechanism was proposed for the role of gamma-glutamylmethylamide in the regulation of endogenous nitrogen supplies in this organism.

Carbon Isotopes

Methylamine metabolism in Hansenula polymorpha: an in vivo 13C and 31P nuclear magnetic resonance study.

Methylamine uptake, oxidation, and assimilation were studied in Hansenula polymorpha, a methylotrophic yeast. The constitutive ammonia transport system was shown to be effective at accumulating methylamine within cells cultured with methylamine or ammonia as a nitrogen source. [13C]methylamine oxidation rates were measured in vivo in methylamine-adapted cells by 13C nuclear magnetic resonance and were found to be lower than its uptake rate into the cells. The 13C label of methylamine was found exclusively in trehalose and glycerol, and [13C]formaldehyde was also extensively assimilated, indicating the presence of an assimilation pathway for the methylamine carbon. In vivo 31P nuclear magnetic resonance analysis showed major differences in the endogenous polyphosphate levels and mean chain length during adaptation of the cells from ammonia to methylamine, indicating that methylamine accumulated in the vacuole in the same manner as basic amino acids and purines. [13C]glucose metabolism was drastically altered during adaptation of the cells from ammonia to methylamine as a nitrogen source. The total rate of glucose utilization and the rate of ethanol production fell. Direct trehalose synthesis from glucose increased, indicating a switch from carbon utilization for growth to that for storage. The rate of methylamine oxidation was sufficient to support a much higher flow of carbon into central biosynthetic pathways. These results suggest that this reduction in biosynthetic carbon flow, rather than nitrogen availability, was the main factor responsible for reducing the growth rate of the yeast when ammonia was replaced by methylamine as the nitrogen source.

Ammonia

Inhibition by itaconate of growth of methylotrophic bacteria.

The effects of the isocitrate lyase-directed growth inhibitor itaconate on the growth of certain methylotrophic organisms was investigated. It was found that growth of those organisms possessing the Icl(+)-serine pathway of one-carbon metabolism was inhibited during growth on methylamine and on acetate, but not on glucose. Organisms possessing the Icl(-)-serine pathway pathway were unaffected. Organism PAR, an Icl(-)-serine pathway type, was not specifically inhibited during growth on acetate. This finding further substantiates previous reports of the lack of isocitrate lyase in this organism, indicating a totally new pathway for acetate assimilation.

Acetates

Catabolite repression of isocitrate lyase in methylamine-grown Pseudomonas MA. Effect of carbon and nitrogen sources.

The synthesis of the C1-type isocitrate lyase found during growth of Pseudomonas MA on methylamine was investigated. It was shown that this enzyme is subject to catabolite repression by preferred carbon sources, e.g., succinate, and by ammonia. The carbon repression can be overcome by cyclic AMP, which was shown to be acting at the transcriptional level. Repression by ammonia is overcome during growth with methylamine as sole nitrogen, but not carbon, source. Uptake experiments showed that the uptake of methylamine from the medium was prevented by ammonia in the presence, but not in the absence, of an alternative carbon source. Measurement of cyclic AMP levels in cells grown on methylamine and on succinate, glycerol, glucose and acetate as carbon sources (with ammonium chloride as nitrogen source) revealed that methylamine-grown cells have the lowest cyclic AMP level despite having the highest C1-type isocitrate lyase activity. Cells grown on acetate with methylamine as sole nitrogen source possess both C1-type and C2-type isocitrate lyase. The results indicate that the synthesis of C1-isocitrate lyase is under control by repression-derepression involving a specific inducer, cyclic AMP, and an effector whose action is related to the nitrogen supply of the cell.

Ammonia

Alcohol dehydrogenases from a facultative methylotrophic bacterium.

Alcohol-oxidizing enzymes of the facultative methylotroph PAR were investigated after growth of the bacteria on methanol and ethanol. During methanol growth only a phenazine methosulfate-linked alcohol dehydrogenase was detected. This enzyme had broad specificity for primary alcohols and was also capable of oxidation of secondary alcohols. It had a molecular weight of 112,000, was composed of two subunits of equal molecular weight, and showed an absolute requirement for ammonium ion for activation. During ethanol growth this enzyme was absent and was replaced by a typical nicotinamide adenine dinucleotide-linked alcohol dehydrogenase of molecular weight 150,000. The latter enzyme also had broad specificity but could not oxidize methanol. This enzyme was not found during methanol growth. These data show that the organism has two distinctly separate mechanisms for oxidation of alcohols.

Alcohol Oxidoreductases

The origin of the sulfur atom in thiamine.

The mode of biosynthesis of the thiazole moiety of thiamine, 4-methyl-5beta-hydroxyethyl thiazole (MHET) was studied using Salmonella typhimurium as test organism. It was shown by isotope incorporation experiments, that the sulfur atom, but not carbon-3, of cysteine is incorporated into MHET, indicating a separation of the sulfur atom of cysteine from the carbon chain during incorporation. Isotope competition experiments revealed that the incorporation of [35S]cysteine is not significantly diluted by the presence of methionine, homocysteine, and glutathione. No incorporation of label from [14C]glutamate and [14C]formate was observed, leaving the origin of the five-carbon unit still in doubt.

Cysteine

The biosynthesis of the thiazole moiety of thiamine in Salmonella Typhimurium.

The mechanism of biosynthesis of 4-methyl-5-beta-hydroxyethyl thiazole, the thiazole moiety of thiamine was studied in Salmonella typhimurium. Using the adenosine derepression technique the incorporation of various 14C-labeled precursors was determined. We found that;e1Me-14C]methionine, [2-14C]methionine, [U-14C]alanine, and [2-14C]glycine were not incorporated whereas [2-14C]tyrosine was incorporated. Degradation of the 4-methyl-5-beta-hydroxyethyl thiazole obtained after [2-14C]tyrosine incorporation revealed that all of the activity was located on carbon-2. These findings are discussed and compared with previous findings concerning 4-methyl-5-beta-hydroxyethyl thiazole biosynthesis.

Alanine

The distribution of the isocitrate lyase serine pathway amongst one-carbon utilizing organisms.

A study of several one-carbon-utilizing organisms was conducted to determine the distribution of the recently found isocitrate-lyase-positive serine pathway of C1 assimilation. The results showed that this pathway is restricted to soil-isolated, non-pigmented Pseudomonas, initially isolated in methylamine enrichments, and to certain species of Hyphomicrobium. It was not detected in any organisms possessing a pink pigment.

Alcohol Oxidoreductases

Two distinct isocitrate lyases from a pseudomonas species.

The isocitrate lyases of acetate- and methylamine-grown Pseudomonas MA (Shaw strain) were studied. They were shown to be different by a variety of physical criteria including chromatographic elution patterns, heat inactivation kinetics, pH variation of Km values, and migration on polyacrylamide gels. The implications and significance of the existence of two enzymes in relation to the role of isocitrate lyase in methylamine utilization is discussed.

Hot Temperature