Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Malate Synthase”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Noninvolvement of acyl carrier protein with citrate synthase and malate synthase.

Acyl carrier protein (ACP coli) was isolated from commercially grown Escherichia coli B and was acetylated by chemical methods. Biological activity of the synthesized acetyl-ACP coli was checked in an in vitro fatty acid-synthesizing system isolated from E. coli B. Since acetyl-ACP is preferred over acetyl-coenzyme A (CoA) as a substrate in these reactions, the possibility that it may substitute for acetyl-CoA in biosynthetically and oxidatively important cellular pathways (glyoxylate and Krebs cycles, respectively) was examined. Acetyl-ACP was tested for substrate activity with the enzyme of each cycle which has been found to utilize acetyl-CoA. Crystalline citrate synthase (EC 4.1.3.7) of porcine origin (Calbiochem) was found to be inactive with acetyl-ACP coli, which acted neither as a substrate nor as an inhibitor in the presence of acetyl-CoA. Malate synthase (EC 4.1.3.2) of the acetate type was isolated from acetate-grown cells of a mutant of E. coli K-12 (VGD(3)H(5)) and was also found to be inactive with acetyl-ACP coli. The significance of these results and of the recent discovery of another phospho-pantetheine-containing protein are discussed.

Bacterial Proteins↗

Molecular characterization of Escherichia coli malate synthase G. Differentiation with the malate synthase A isoenzyme.

Two genes encoding the enzymes malate synthase G and glycolate oxidase, have been linked to locus glc (64.5 min), responsible for glycolate utilization in Escherichia coli. The gene encoding malate synthase G, for which we propose the notation glcB, has been cloned, sequenced and found to correspond to a 2262-nucleotide open-reading frame, which can encode a 723-amino-acid polypeptide, clearly different from the isoenzyme malate synthase A, which has 533 amino acids. Northern-blot experiments indicate that glcB was expressed as an apparently monocistronic transcript, inducible by glycolate. Malate synthase G was purified to near homogeneity. The molecular mass determined by gel filtration yielded a value of 82 kDa for the purified enzyme and the same value as for the crude extract enzyme, indicating a monomeric structure. Despite the lower sequence similarity between malate synthase G and the other reported malate synthases, three out of nine consensus boxes defined in most of these enzymes are conserved in addition to a cysteine residue that has been reported to be important for the catalytic mechanisms.

Amino Acid Sequence↗

Functional analysis and regulation of the malate synthase from Chlamydomonas reinhardtii.

Malate synthase (EC 2.3.3.9, formerly EC 4.1.2.2) has been investigated in the unicellular green algae Chlamydomonas reinhardtii. The molecular characteristics and the regulation of gene expression have been investigated for the enzyme. A full-length malate synthase cDNA has been isolated, containing an open reading frame of 1,641 bp encoding a polypeptide of 546 amino acids. This protein shares the conserved signature of the malate synthase family, along with the catalytic residues essential for enzymatic activity and a C-terminal motif that matches the consensus for glyoxysome import. Functionality studies have been facilitated by heterologous expression of the malate synthase cDNA in Escherichia coli. The remarkable metabolic versatility of the alga has been used to analyse the metabolic control of malate synthase gene expression. The data strongly support the role of acetate and light as the main regulatory effectors, and the existence of cross-talk between the two signalling pathways.

Acetates↗

Synthesis and hydrolysis of malyl-coenzyme A by Pseudomonas AM1: an apparent malate synthase activity.

The malate synthase activity detectable in crude extracts of Pseudomonas AM1 has been shown to be due to a coupling of a malyl-CoA hydrolase with malyl-CoA lyase and not due to a discrete malate synthase enzyme. The partial purification of this malyl-CoA hydrolase from Pseudomonas AM1 has shown that it is distinct from citrate synthase which also hydrolyses malyl-CoA. The malyl-CoA hydrolase has a low Km for malyl-CoA (7-0 muM). A mutant of Pseudomonas AM1, ICT51 (Taylor & Anthony, 1975), which is unable to grow on ethanol, malonate or 3-hydroxybutyrate, has been shown to have an altered malyl-CoA hydrolase with a Km for malyl-CoA 30 times higher than that of the enzyme present in the wild-type organism. Two classes of revertants to growth on these substrates have been isolated: (i) those with a malyl-CoA hydrolase of similar Km to the wild-type and (ii) those in which the malyl-CoA hydrolase activity remains the same as in the mutant ICT51. The nature of the mutation leading to the latter class of revertants is unknown.

Cell-Free System↗

Pathogenicity of Stagonospora nodorum requires malate synthase.

A gene encoding malate synthase, a key enzyme of the glyoxylate cycle, has been cloned and characterized in the necrotrophic wheat pathogen Stagonospora nodorum. Expression studies of Mls1 showed high levels of transcript in ungerminated spores whereas malate synthase enzyme activities were low. Expression studies in planta found that Mls1 transcript levels decreased approximately 10-fold upon germination before slowly increasing throughout the remainder of the infection. To characterize Mls1 further, the gene was disrupted in S. nodorum by homologous recombination. In the absence of any supplied carbon source, the mls1 spores were unable to germinate and consequently the mutants were non-pathogenic. Germination and pathogenicity could be restored by the addition of either glucose or sucrose, implying that S. nodorum is reliant upon the catabolism of lipids for infection. Furthermore, analysis of lipid bodies in the mutant strain indicated that lipid mobilization and, consequently, peroxisomal beta-oxidation of fatty acids is delayed or inhibited by the disruption of the glyoxylate cycle. This study has demonstrated for the first time in a fungal phytopathogen the requirement of malate synthase for pathogenicity, suggesting that gluconeogenesis is both dependent on the glyoxylate cycle and required for infection.

Ascomycota↗

Purification and immunochemical characterization of malate synthase from Euglena gracilis.

Malate synthase (EC 4.1.3.2) from dark-grown Euglena gracilis was purified to homogeneity by the criterion of polyacrylamide-gel electrophoresis. The enzyme was released from acetate-grown cells by treatment with ultrasonic waves and purified from broken-cell suspensions by high-speed centrifugation and (NH4)2SO4 fractionation, followed by gel-filtration on Sepharose 6B. The final enzyme preparation was purified 190-fold compared with the crude extract. The mol.wt. of the enzyme was about 350000 as determined by gel filtration on Sepharose 6B. Treatment with sodium dodecyl sulphate and urea dissociated the enzyme into subunits of mol.wt. 175000. The pH optimum for the enzyme was 8.0 and the Km values for glyoxylate and acetyl-CoA were 50 and 80 micron respectively. Antibodies raised to the purified enzyme were shown to be monospecific by radiochemical immunoassay. Euglena anti-(malate synthase) tested on Ouchterlony double-diffusion gels gave a sharp precipitation band against acetate-grown Escherichia coli, but no immunological correspondence was observed with acetate-grown Chlorella fusca, Zea mays (maize) scutella or purified malate synthase from Ricinus communis.

Animals↗

Distinct cis-acting elements direct the germination and sugar responses of the cucumber malate synthase gene.

The malate synthase gene (ms) promoter in cucumber (Cucumis sativus L.) was investigated with the aim of distinguishing DNA sequences mediating regulation of gene expression by sugar, and expression following seed germination. Promoter deletions were constructed and their ability to direct expression of the beta-glucuronidase (gus) reporter gene was investigated in transgenic Nicotiana plumbaginifolia. Gene expression was assayed in germinating seeds and developing seedlings (the germination response) and in seedlings transferred from light into darkness with and without sucrose (the sugar response). As progressively more of the promoter was deleted from the 5' end, first the sugar response and then the germination response was lost. Thus, distinct regions of the promoter are required for carbohydrate control and for regulation of gene expression in response to germination. Sequence comparisons of the ms promoter with that of the isocitrate lyase gene (icl) of cucumber have previously identified four IMH(ICL-MS-Homology) sequences. One such sequence, IMH2, is shown here to be implicated in the sugar response of the ms gene. The 17 bp sequences which when deleted from the ms gene results in loss of the germination response, contains a 14 bp sequence which is similar to a sequence in the icl promoter, which we refer to as IMH5. Furthermore, this sequence has similarity with amdI9-like sequences in filamentous fungi, which confer facB-mediated acetate inducibility on several genes, including those encoding ICL and MS.

Base Sequence↗

Oligomerization of malate synthase during glyoxysome biosynthesis.

The octameric malate synthase, found in glyoxysomes of plants, is synthesized as monomeric precursor in the cytoplasm. The precursor form does not possess a different subunit molecular weight than the mature organellar enzyme, but differs from the organellar protein by not oligomerizing and aggregating. This was shown by synthesis in a cell-free reticulocyte lysate system programmed with cucumber poly A+-mRNA followed by immunoprecipitation of the radiolabeled translation products. The precursor form of malate synthase was also detected in vivo in the cytosol of pulse-labeled cucumber cotyledons after immunoprecipitation of the radiolabeled polypeptide. At low salt concentrations, mature malate synthase can be converted into aggregated forms. However, the precursor form obtained either by in vitro translation or by extraction from the cytosol after short pulses of radioactive methionine, could neither be oligomerized into the octameric form nor aggregated into the 100-S form. Processing of malate synthase, assumed to be a requisite for oligomerization, took place rapidly in the glyoxysomes, but proceeded only slowly in the cytosol. This was demonstrated both by the uptake of in vitro-translated malate synthase into glyoxysomes, and by analysis of newly synthesized malate synthase detectable in glyoxysomes in vivo. In both cases the octamer was by far the predominant form.

Cell Compartmentation↗

Malate synthase: aggregation, deaggregation, and binding of phospholipids.

Octameric malate synthase is located in the glyoxysomes of cucumber cotyledons. The enzyme is predominantly confined to the organelle's membrane and can be solubilized with Mg2+. Separation of cell structures in a zonal rotor afforded, besides glyoxysomes, two other zones with malate synthase activity, viz., in the gradient supernatant and in the range of the endoplasmic reticulum (ER). Malate synthases of these three fractions were purified to apparent homogeneity and classified according to their molecular weight. Differences in subunit molecular weight, however, could not be detected when malate synthases from the three fractions were compared. Mature malate synthase, as well as malate synthase prepared from fractions sedimenting similarly to the ER, exhibited the following behavior with respect to aggregation and deaggregation: at low salt concentrations and in the absence of Mg2+, the enzyme shifted to aggregated forms (approx 100 S); with 2 mM Mg2+, malate synthase deaggregated and occurred predominantly as an octamer (19 S). By changing buffer conditions, mature forms of malate synthase could be interconverted repeatedly between octameric and aggregated forms, whereas a monomeric form (5 S), prepared from soluble fractions assigned to the cytosol, did not oligomerize. The amphipathic properties of malate synthase were demonstrated by the enzyme's capacity for binding phospholipids.

Macromolecular Substances↗

Structural basis of the thermostability of monomeric malate synthase from a thermophilic Bacillus.

Malate synthases from a thermophilic Bacillus and Escherichia coli have been isolated in a high state of purity. Molecular weights of these two proteins determined in the native state and after denaturation in sodium dodecyl sulfate-mercaptoethanol show that the enzymes are monomeric. This conclusion is supported, for the thermophile enzyme, by the result of an electrophoretic analysis of that protein after treatment with dimethylsuberimidate and denaturation. The thermophilic Bacillus malate synthase is considerably more thermostable than its mesophilic counterparts from E. coli, Bacillus licheniformis, and Pseudomonas indigofera. It is, however, markedly labilized by an increase in the ionic strength of the medium brought about by the addition of 0.2 M potassium chloride or in pH above 9. Increased ionic strength has little effect on the thermostability of the mesophilic bacterial malate synthases. These observations provide strong support for the idea that monomeric proteins in thermophiles owe their unusual heat stability to the presence of salt bridges in their tertiary structure.

Bacillus↗

19S cytosolic malate synthase. A small pool characterized by rapid turnover.

A pool of 19S malate synthase was detected in the cytosol. This pool was separated from the microsomal and glyoxysomal malate synthase when cotyledons of germinating seed of Cucumis sativus were fractionated. An early stage of seed germination was selected for our investigations, when 100S "microsomal" malate synthase was also present. 1) When L-[35S]methionine was applied in vivo to label cellular proteins the small pool of 19S malate synthase was found to contain the highest specific activity compared to microsomal or glyoxysomal malate synthase. 2) The kinetics of specific radioactivity in malate synthase during a pulse chase-labelling experiment established that 19S malate synthase was a precursor of microsomal malate synthase. 3) By means of anti-malate synthase antibodies, 100S malate synthase could be recovered on protein A-Sepharose and thus separated from the endoplasmic reticulum. The data suggest that both microsomal and glyoxysomal malate synthase are synthesized in the cytosol rather than at the endoplasmic reticulum according to the signal hypothesis.

Cytosol↗

Cottonseed malate synthase : purification and immunochemical characterization.

Malate synthase (EC 4.1.3.2), an enzyme unique to the glyoxylate cycle, was purified to homogeneity from cotyledons of 72-hours, darkgrown cotton (Gossypium hirsutum L.) seedlings. Homogeneity of the enzyme was assessed by silver staining SDS-PAGE gels. Purification was accomplished by using a single buffer medium through six steps involving one ammonium sulfate fractionation and chromatography on three columns (Sephacryl S-300, DEAE Sephacel, Phenyl Sepharose). Large-scale preparation of glyoxysomes, a main step in all other published procedures, was not involved. The purified enzyme and that extracted from glyoxysomes appears to be a dodecamer with a native molecular weight of 750,000 (sedimentation coefficient of >20 Svedberg units [S] on sucrose gradients) composed of identical subunits (molecular weight approximately 63,000). The monomer (5S) occurs in the cytosol. Polyclonal antibodies raised in rabbits were judged to be monospecific for malate synthase by immunotitration, double immunodiffusion, and western blotting. Double immunodiffusion experiments revealed only partial immunological identity between the 5S (cytosolic) and 20S (glyoxysomal forms, although complete identity was observed between the 5S form in immature and germinated seeds, and the 20S form in immature and germinated seeds. Cross-reactivity of the cotton antimalate synthase serum was observed with extracts from five other oilseeds. Western blot analyses showed that malate synthase protein was not present in immature seeds prior to appearance of enzyme activity, but when present, subunit molecular weight was indistinguishable in immature, desiccated, and germinated seeds.

Journal Article↗

Replacement of arginine-171 and aspartate-453 in Streptomyces coelicolor malate synthase A by site-directed mutagenesis inactivates the enzyme.

Malate synthase, a key enzyme of the glyoxylate cycle, catalyzes the condensation of glyoxylate and acetyl-CoA to yield malate and CoA. Escherichia coli is known to possess two forms of malate synthase, A and G respectively. The recent elucidation of the E. coli malate synthase G crystal structure suggested two residues, Arg338 and Asp631, are essential for catalysis. Multiple sequence alignment of 26 known malate synthase enzymes revealed that the two proposed sites are highly conserved, despite the low homologies between the two distinct forms of the enzyme (13-18%). The conservation of these residues in both forms of malate synthase suggests that they possess a similar catalytic strategy. Thus, despite the absence of a three-dimensional structure for malate synthase A, the significance of this enzyme in the primary metabolic pathway has prompted the investigation of the involvement of the corresponding residues, Arg171 and Asp453, in Streptomyces coelicolor malate synthase A by site-directed mutagenesis. Heterologous expression in E. coli followed by purification of the constructed mutant proteins, Arg171Leu and Asp453Ala, were performed and subsequent enzyme assays of the purified mutant proteins indicated a significant loss of catalytic activity, thus attesting to the need for the corresponding conserved residues to maintain malate synthase functionality.

Amino Acid Sequence↗

Large-scale purification and some properties of malate synthase from baker's yeast.

1. Malate synthase from baker's yeast (5 kg) was purified 400--500-fold to homogeneity. About 50--200 mg homogeneous enzyme were obtained within a week in a yield of 30% with reference to the total activity in cell-free crude extracts. The enzyme, pI = 7.5, was pure as judged from ultracentrifugal and gel electrophoretic studies. 2. Sedimentation and diffusion coefficients were determined: S 0 20,w = 8.26 +/- 0.05 S, D 0 20,w = 4.5 +/- 0.1 X 10(-7) cm2 s-1. The molecular weight of the synthase was found to be 175 000 +/- 10 000 and 180 000 +/- 10 000 by sedimentation/diffusion and by high-speed sedimentation equilibrium respectively. It was concluded from these and other results that malate synthase has a molecular mass of 180 000 +/- 10 000. 3. The synthase on sodium dodecylsulfate gel electrophoresis was dissociated to yield a single specimen of Mr about 66 000. The result indicates a composition of the native enzyme from three subunits of identical or nearly identical mass. 4. The binding of acetyl-coenzyme A to the synthase is independent of Mg2+ but that of glyoxylate is strictly dependent on the presence of Mg2+. Kinetic studies indicate that the malate synthase reaction follows a sequential random mechanism. 5. The intermolecular isotopic effect, kH:k2H = 1.4, was determined with acetyl-coenzyme A and [2H3]acetyl-coenzyme A under several different experimental conditions and was shown to reflect different maximal velocities of the two substrates. An enzymic procedure for the preparation of doubly labelled [3H, 14C]acetyl-coenzyme A is also presented.

Kinetics↗

Malate synthase from Corynebacterium glutamicum: sequence analysis of the gene and biochemical characterization of the enzyme.

Malate synthase is one of the key enzymes of the glyoxylate cycle and is essential for growth on acetate as sole carbon source. The aceB gene from Corynebacterium glutamicum, encoding malate synthase, was isolated, subcloned and expressed in Escherichia coli and C. glutamicum. Sequencing of a 3024 bp DNA fragment containing the aceB gene revealed that it is located close to the isocitrate lyase gene aceA. The two genes are separated by 597 bp and are transcribed in divergent directions. The predicted aceB gene product consists of 739 amino acids with an M(r) of 82,362. Interestingly, this polypeptide shows only weak identity with malate synthase polypeptides from other organisms and possesses an extra N-terminal sequence of about 170 amino acid residues. Inactivation of the chromosomal aceB gene led to the absence of malate synthase activity and to the inability to grow on acetate, suggesting that only one malate synthase is present in C. glutamicum. The malate synthase was purified from an aceB-overexpressing C. glutamicum strain and biochemically characterized. The native enzyme was shown to be a monomer migrating at an M(r) of about 80,000. By sequencing the N-terminus of malate synthase the predicted translational start site of the enzyme was confirmed. The enzyme displayed Km values of 30 microM and 12 microM for the substrates glyoxylate and acetyl CoA, respectively. Oxalate, glycolate and ATP were found to be inhibitors of malate synthase activity. The present study provides evidence that the malate synthase from C. glutamicum is functionally similar to other malate synthase enzymes but is different both in size and primary structure.

Amino Acid Sequence↗

Malate synthase from Streptomyces clavuligerus NRRL3585: cloning, molecular characterization and its control by acetate.

Malate synthase is a key enzyme of the glyoxylate cycle, which is an anaplerotic pathway essential for growth on acetate as the sole carbon source. The aceB gene, encoding malate synthase from Streptomyces clavuligerus NRRL 3585, was cloned using PCR and fully sequenced. The ORF obtained encodes 541 amino acids with a deduced Mr of 60000, consistent with the observed Mr (62000-64000) of most malate synthase enzymes reported so far. The aceB gene has a high G+C content (71.5 mol%), especially in the third codon position. A 50 bp region upstream of the malate synthase ORF was predicted to be a prokaryotic promoter region. The relationship between carbon source, antibiotic (cephalosporin) biosynthesis and malate synthase activity was investigated. Growth of S. clavuligerus on acetate as the major carbon source was delayed, compared to that on glycerol. Furthermore, high levels of malate synthase activity were associated with the presence of acetate in the growth medium. Growth on acetate also resulted in lower levels of cephalosporin production, compared to that on glycerol. The cloned S. clavuligerus aceB gene was expressed in Escherichia coli BL21(DE3). Transformants exhibited an approximately 71-fold increase in malate synthase activity, compared to the control, thereby demonstrating high-level expression of soluble and enzymically active malate synthase in the heterologous host.

Acetates↗

Rates of de novo synthesis of malate synthase and albumins during the very early phase of germination.

Malate synthase is synthesized de novo in the very phase of germination. Its molecular and immunological properties do not differ from those of malate synthase from fully developed cotyledons. Radioactive leucine was administered to dry seeds of cucumber, and its incorporation into proteins of cotyledons was examined after 2 days of germination. The specific radioactivity of malate synthase, purified by immunoprecipitation and electrophoresis on polyacrylamide gel, was only 1/20 the average value of the total albumin fraction. The minimal incorporation documented by the comparatively low specific activity of isolated malate synthase is discussed in relation to the large pool of malate synthase already present in dry seeds.

Albumins↗