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U Matern

Publications and source records attributed to U Matern.

At least 55 records · Page 3Linked to original sources

Molecular cloning, induction and taxonomic distribution of caffeoyl-CoA 3-O-methyltransferase, an enzyme involved in disease resistance.

Trans-Caffeoyl-CoA 3-O-methyltransferase is involved in the reinforcement of the plant cell wall under conditions that trigger the disease resistance response (Pakusch, A.-E., Kneusel, R.E., and Matern, U. (1989) Arch. Biochem. Biophys. 271, 488-494). Partial amino acid sequences of the enzyme from cultured parsley cells that had been treated with a crude elicitor were identified (Pakusch, A.-E., Matern, U., and Schiltz, E. (1991) Plant Physiol. 95, 137-143), and corresponding degenerated oligonucleotides of 29- and 30-nucleotide length were synthesized. Northern hybridizations with these probes revealed one specific RNA band, and the amount of this RNA appeared to be transiently induced upon elicitation of the cells. De novo enzyme synthesis was confirmed by Western blotting experiments using a specific antiserum. The time course of induction closely followed the pattern observed for phenylalanine ammonia-lyase and suggested the operational coordination of the methyltransferase with the general phenylpropanoid pathway in vivo. Full size cDNA of 1.258 kilobases was isolated in lambda gt11, sequenced and found to contain a remarkably long 5'-untranslated leader sequence followed by an open reading frame that codes for a 241-residue polypeptide representing the 27-kDa subunit of the native, dimeric parsley enzyme. Almost no homology was found to protein sequences filed in data banks. Southern hybridization with genomic DNA suggested that only one or two copies of the respective gene(s) are present in the parsley genome. Caffeoyl-CoA-specific methyltransferase activity was demonstrated in taxonomically widely diverse plants such as Dianthus caryophyllus (Caryophyllaceae), Carthamus tinctorius (Asteraceae) or Daucus carota, and Ammi majus (Apiaceae) where it is commonly induced by elicitor treatment. In Northern blots with RNA from Ammi or Daucus, parsley cDNA hybridized specifically to one band comparable in size to the parsley RNA, whereas Dianthus and Carthamus appear to code for slightly larger RNAs (roughly 1.45 and 1.3 kilobases, respectively). Slot-blot hybridizations revealed in all instances the rapid and transient increase of mRNA levels in response to elicitation. This emphasizes the integral role of the enzyme in disease resistance expression in plants far beyond parsley and also illustrates a new physiological context for the induction of 4-coumarate:CoA ligase.

Amino Acid Sequence↗

Coumarins and other phenylpropanoid compounds in the defense response of plant cells.

Cultured cells of the Apiaceae, e. g. PETROSELINUM CRISPUM and AMMI MAJUS, produce large quantities of coumarin phytoalexins upon treatment with fungal elicitors and concomitantly reinforce their cell walls by ferulic ester incorporation. In these reactions, the cells mimic the disease resistance response commonly expressed in plants following infection by phytopathogenic fungi. Both coumarins and ferulic esters are derived from the general phenylpropanoid pathway. The elicited Apiaceae cell cultures have therefore served as model systems for the investigation of the biosynthetic and regulatory mechanisms involved in phenylpropanoid accumulation. The results of these studies suggest an unconventional pathway for umbelliferone biosynthesis and demonstrate both the transcriptional and post-transcriptional control of a novel pathway to feruloyl-CoA. They underline the enormous contribution of such model systems to the present knowledge on regulatory patterns and DNA coding in secondary metabolism.

Journal Article↗

Elicitor-Inducible Caffeoyl-Coenzyme A 3-O-Methyltransferase from Petroselinum crispum Cell Suspensions : Purification, Partial Sequence, and Antigenicity.

Parsley (Petroselinum crispum) cell cultures respond rapidly to treatment with fungal elicitor by the accumulation of coumarin phytoalexins in the culture fluid and by incorporation of ferulic esters into their cell walls. S-Adenosyl-l-methionine:trans-caffeoyl-CoA 3-O-methyltransferase activity, specifically involved in the formation of ferulic esters, is induced under these conditions. Such an inducible methyltransferase activity has been found in plant cells of various species. The methyltransferase was purified to homogeneity from parsley cells that had been treated for 12 hours with crude cell wall elicitor from Phytophthora megasperma f. sp. glycinea. It consists of two very similar or identical subunits of approximately 24 kilodaltons, which are N-terminally blocked. Attempts to generate antisera against the native enzyme in rabbit or mouse failed, but an antiserum, cross-reactive in enzyme-linked immunosorbent assays, was raised in mouse by intraperitoneal injection of the heat-denatured enzyme. Roughly 33% of the amino acid sequence was elucidated by microsequencing of tryptic peptides of the methyltransferase. The parsley enzyme may be related to adenine-specific methyltransferases known from bacterial sources. Antiserum generated in rabbit against a synthetic decapeptide, as inferred from one of the tryptic peptides and conjugated to ovalbumin, specifically cross-reacted with the methyltransferase protein in Western blots developed after SDS-polyacrylamide electrophoresis. This serum did not react, however, with native parsley methyltransferase.

Journal Article↗

Kinetic characterization of caffeoyl-coenzyme a-specific 3-o-methyltransferase from elicited parsley cell suspensions.

The activity of caffeoyl-coenzyme A (CoA) 3-O-methyltransferase, an enzyme widely distributed in plants and involved in cell wall reinforcement in a disease resistance response, appears to be subject to a complex type of regulation in vivo. In cultured parsley (Petroselinum crispum) cells treated with an elicitor from Phytophthora megasperma f.sp. glycinea, the enzyme activity is rapidly induced by a transient increase in the rate of de novo transcription. Parsley caffeoyl-CoA-specific methyltransferase differs in several aspects from other plant O-methyltransferases but shows limited homology to bacterial adenine-specific DNA methyltransferases. Kinetic analysis revealed an Ordered Bi Bi mechanism for catalysis, with caffeoyl-CoA bound prior to S-adenosyl-l-methionine and feruloyl-CoA released last from the enzyme. The small inhibitory constant determined in vitro for feruloyl-CoA suggests that, in vivo, the enzyme activity is also under tight control by the steady-state product concentration in addition to the rate of transcription that becomes affected upon elicitor challenge.

Journal Article↗

Detoxification of the macrolide toxin brefeldin A by Bacillus subtilis.

The macrolide toxin brefeldin A is a determinant of Alternaria leaf blight disease in safflower, which causes severe economic losses worldwide. Soilborne bacteria, classified as Bacillus subtilis spp., were isolated and shown to readily metabolize brefeldin A in laboratory culture to one major product. This product was identified by high resolution 2D 1H NMR and FAB mass spectroscopies as the acid resulting from hydrolysis of the macrolide ring in brefeldin A . In contrast to brefeldin A, the acid completely lacked phytotoxic activity in the standard leaf bioassay. Detoxification of brefeldin A by the lactonase activity from Bacillus subtilis may be exploited in the future to introduce resistance to Alternaria leaf blight in safflower.

Bacillus subtilis↗

Rapid purification of the peptide toxins microcystin-LR and nodularin.

An isolation procedure was developed to provide within one day microcystin-LR, a cyclic heptapeptide toxin from Microcystis aeruginosa PCC 7806. After ODS (octadecylsilyl) solid phase extraction, the crude toxin fraction was chromatographed using a strong anion exchange column. The toxin was eluted with 0.02 M ammonium bicarbonate. An at least 95% purity was revealed on HPLC separation by monitoring at 214 nm. Application of the procedure to the cyclic pentapeptide toxin nodularin from Nodularia spumigena AV2 was examined.

Chromatography, Gel↗

Induction of two prenyltransferases for the accumulation of coumarin phytoalexins in elicitor-treated Ammi majus cell suspension cultures.

Two dimethylallyl diphosphate:umbelliferone dimethylallyltransferase (prenyltransferase) activities, catalysing the 6-prenylation and the 7-O-prenylation, respectively, of umbelliferone in the course of phytoalexin synthesis, increased in Ammi majus cell suspension cultures in response to elicitor treatment. Both enzyme activities were dependent on Mg2+ or Mn2+ with significant preference for Mg2+ in the 6-prenylation reaction. Whereas dark-grown cells did not contain these activities, both prenyltransferase activities were induced rapidly by the addition of elicitor reaching a first maximum after 10-14 hr and a second maximum beyond 30 hr. Other coumarin specific, elicitor-induced enzyme activities of A. majus cells, in contrast, showed only one maximum of activity within the 50 hr experimental period, while the pattern of induction of phenylalanine ammonia-lyase activity resembled that of the prenyltransferases with maxima at ca 8 hr and 20-30 hr. Preliminary data suggest that the apparent biphasic induction of these enzyme activities is due to post-translational enzyme modifications.

Alkyl and Aryl Transferases↗

The biosynthesis of phytoalexins in Dianthus caryophyllus L. cell cultures: induction of benzoyl-CoA:anthranilate N-benzoyltransferase activity.

It has been shown that cell cultures of Dianthus caryophyllus L. c.v. Eleganz accumulate N-benzoyl-4-methoxyanthranilic acid, previously identified as the phytoalexin methoxydianthramide B, in response to treatment either with a crude elicitor isolated from the cell walls of Phytophthora megasperma f.sp. glycinea or with a commercial yeast extract. Cell-free extracts from the induced cells efficiently catalyzed the N-benzoylation of anthranilate in the presence of benzoyl-CoA. The partially purified transferase was shown to be specific for anthranilate with almost no activity toward 4-hydroxyanthranilate, whereas acyl donors other than benzoyl-CoA such as salicyloyl-, cinnamoyl-, or 4-coumaroyl-CoA were also accepted. Elicitor treatment of the cells additionally induced an S-adenosyl-L-methionine:N-benzoyl-4-hydroxyanthranilate 4-O-methyltransferase activity. We propose, therefore, that methoxydianthramide B is derived from N-benzoylanthranilic acid via N-benzoyl-4-hydroxyanthranilic acid. Dark-grown cells contained little N-benzoyltransferase activity (approx 8 mu kat/kg), which increased roughly ninefold within 6 h following the addition of the elicitor. In addition, phenylalanine ammonia-lyase activity of the cells increased about twofold under these conditions to a maximum (approx 40 mu kat/kg) at 5 h. The rapid induction of both enzyme activities suggests that the shikimate pathway is of crucial importance in the disease resistance response of carnation cells.

Acyltransferases↗

Nontoxic and toxic oligopeptides with D-amino acids and unusual residues in Microcystis aeruginosa PCC 7806.

Toxic and nontoxic peptides were isolated from the cyanobacterium Microcystis aeruginosa PCC 7806 by a procedure including extraction of cells with water-saturated 1-butanol, chromatography of the extract on silica gel plates and high performance liquid chromatography (HPLC) on Partisil-5. The toxin was shown to be only a minor constituent, being negatively charged and thus separable by electrophoresis, within the HPLC-purified fraction. It contained erythro-beta-methyl-D-Asp, D-Glu, D-Ala, L-Leu, and L-Arg known to be part of the Microcystis peptide-toxin with Mr 994. The major part of the HPLC-purified fraction was assigned, however, to a nontoxic peptide with a Mr of 956. Partial hydrolysis studies of the nontoxic peptide(s) revealed amino acid sequences composed of D-Glu, N-methyl-Phe, and 3,4-dehydro-Pro, aside from the common L-amino acids. Cyclic linkage in the nontoxic peptide(s) appears likely.

Amino Acids↗

Formation of trans-caffeoyl-CoA from trans-4-coumaroyl-CoA by Zn2+-dependent enzymes in cultured plant cells and its activation by an elicitor-induced pH shift.

A novel hydroxylase activity catalyzing the formation of trans-caffeoyl-CoA from trans-4-coumaroyl-CoA was identified in crude extracts from cultured parsley cells. The extracts were less active (Vmax/Km) in converting trans-4-coumaric to trans-caffeic acid. Optimal hydroxylase activity was found at pH 6.5 with a steep decline toward both pH 7.4 and pH 5.0. The enzyme activity requires ascorbate and Zn2+ at optimal concentrations of 50 and 0.5 mM, respectively. No other reductant could replace ascorbate, whereas high concentrations of Ca2+ partially substituted for Zn2+. The enzyme is soluble and appears to be located in the cytoplasm. The unusual pH optimum suggests that the hydroxylase is inactive at the normal cytoplasmic pH. Upon treatment of parsley cells with an elicitor derived from Phytophthora megasperma f. sp. glycinea, the cytoplasmic pH dropped by approximately 0.25 pH unit within 55 min as determined by 31P NMR spectroscopy. Our results suggest that this shift in the cytoplasmic pH is sufficient for the activation of the hydroxylase, eventually leading to the formation of caffeoyl and feruloyl esters. Such esters may be a part of a very rapid resistance response of the plant cells, which would leave no time for de novo enzyme synthesis.

Acyl Coenzyme A↗

S-adenosyl-L-methionine:trans-caffeoyl-coenzyme A 3-O-methyltransferase from elicitor-treated parsley cell suspension cultures.

An S-adenosyl-L-methionine:caffeoyl-CoA 3-O-methyltransferase was purified 82-fold from elicitor-induced parsley cell suspension cultures by ammonium sulfate fractionation, anionic exchange and hydrophobic interaction chromatographies, and chromatofocusing. The enzyme has an apparent pI of 5.7 and a molecular weight of approx 48,000 determined by gel filtration chromatography. Maximal activity was observed at pH 7.5 in 50 mM phosphate or Tris-HCl buffers and the additional presence of 0.5 M NaCl. The methyltransferase activity was dependent on Mg2+, whereas EDTA, Mn2+, and Ca2+ inhibited the reaction. The partially purified enzyme efficiently catalyzed the methylation of caffeoyl-CoA, but also accepted with low affinity various other caffeic esters as substrates. Dark-grown parsley cells contained considerable methyltransferase activity which was nevertheless increased approx threefold within 12 h following the addition of a crude fungal elicitor to the cell suspensions. We propose that the O-methyltransferase activity is an important component in the rapid resistance response of the cells, which depends on the formation of cell wall-bound ferulic polymers.

Acyl Coenzyme A↗

Biosynthesis of psoralens. Psoralen 5-monooxygenase activity from elicitor-treated Ammi majus cells.

Microsomes prepared from cultured Ammi majus cells that had been challenged for 14 h with an elicitor derived from the cell walls of Phytophthora megasperma f.sp. glycinea (Pmg) converted psoralen to bergaptol (5-hydroxypsoralen) in the presence of NADPH and oxygen. The enzymatic activity was characterized as an inducible cytochrome-P-450-dependent monooxygenase associated with the endoplasmic reticulum. All of the steps involved in bergapten (5-methoxypsoralen) biosynthesis in Ammi majus have now been demonstrated in vitro. The results suggest that bergaptol and not hydroxymarmesin in the precursor of bergapten.

Carbon Monoxide↗

The peptide toxin of the cyanobacterium Microcystis aeruginosa PCC 7941. Isolation and analysis by nuclear magnetic resonance and fast atom bombardment mass spectroscopy.

Toxin was obtained from the cyanobacterium Microcystis aeruginosa PCC7941 by extracting freeze-dried cells with water-saturated, acidified n-butanol, diethyl ether-water distribution, reversed-phase thin-layer chromatography and silica high-performance liquid chromatography (HPLC). Two toxic peptide fractions resulted from HPLC. One of these fractions was analyzed by UV and NMR spectroscopy, amino acid analysis and fast atom bombardment mass spectroscopy. The following amino acid analysis and fast atom bombardment mass spectroscopy. The following amino acids were identified: beta-methyl-Asp, Thr, Glu, Ala, Val, Leu, Phe, Arg, N-methyldehydro-Ala and 3-amino-9-methoxy-2,6,8-trimethyl-10-phenyldeca-4,6-dienoic acid. Yet the mass spectroscopic data showed that the fraction was still composed of several, most likely cyclic peptides that did not stain with ninhydrin.

Amino Acids↗

Elicitor-induced biosynthesis of psoralens in Ammi majus L. suspension cultures. Microsomal conversion of demethylsuberosin into (+)marmesin and psoralen.

Suspension cultures of Ammi majus L. cells produce various linear furanocoumarins in response to treatment with elicitor preparations from either Alternaria carthami Chowdhury or Phytophthora megasperma f.sp. glycinea. Microsomes which were isolated from these cells 14 h after addition of the elicitor efficiently catalyzed the conversion of demethyl [3-14C]suberosin into labelled (+)marmesin in the presence of NADPH and oxygen. In contrast to the chemical cyclization of demethylsuberosin by m-chloroperoxybenzoic acid, the reaction catalyzed by the marmesin synthase proceeded rapidly and no intermediate demethylsuberosin epoxide could be recovered. Significant blue-light-reversible inhibition by carbon monoxide and inhibition by various chemicals known to inhibit reactions dependent on cytochrome P450 suggested that the marmesin synthase is a cytochrome-P450-dependent monooxygenase. Upon prolonged incubation, a subsequent major labelled product originated from (+)marmesin, which was identified as psoralen. The psoralen synthase was also characterized as a cytochrome-P450-dependent monooxygenase. Both the marmesin synthase and the psoralen synthase, as well as enzymes catalyzing the formation of demethylsuberosin and O-prenylumbelliferone from umbelliferone and dimethylallyl diphosphate, were associated with the endoplasmic reticulum in Ammi majus cells and their activities were concomitantly induced by elicitor treatment of the cells. We propose that in vivo these enzymes are active in the lumen of the endoplasmic reticulum from where the furanocoumarin phytoalexins are excreted into the cell culture fluid.

Carbon Monoxide↗

Differential response of cultured parsley cells to elicitors from two non-pathogenic strains of fungi. Microsomal conversion of (+)marmesin into psoralen.

Microsomal fractions isolated from parsley cell suspension cultures, which had been challenged with an elicitor from either Alternaria carthami or Phytophthora megasperma f. sp. glycinea, catalyzed the formation of psoralen from synthetic [3-14C](+)marmesin. Whereas psoralen was the only product formed in incubations with Alternaria-induced microsomes, another unidentified product was isolated from incubations with Phytophthora-induced microsomes. The latter product is neither a precursor nor a product of psoralen. In contrast, microsomes isolated from non-induced parsley cells lacked both of these catalytic activities. The formation of psoralen depends on NADPH as a cofactor and molecular oxygen. Blue-light-reversible CO inhibition and inhibition by various synthetic chemicals known to bind to cytochromes P450 indicated that the reaction is catalyzed by an elicitor-inducible cytochrome P450-dependent psoralen synthase. Fractionation of microsomal preparations by centrifugation revealed that psoralen synthase is associated with the endoplasmic reticulum. Our results suggest that the endoplasmic reticulum of cultured parsley cells is the primary target in the previously reported differential induction by elicitors from these two non-pathogenic strains of fungi.

Alternaria↗

N-malonyltransferases from peanut.

Three distinct N-malonyltransferases were purified from peanut seedlings, accepting either anthranilic acid, D-tryptophan, or 3,4-dichloroaniline, respectively, as a substrate. Partially purified malonyl-CoA:D-tryptophan malonyltransferase also catalyzed the formation of the corresponding malonic acid conjugate when 1-aminocyclopropane-1-carboxylic acid was employed as a substrate. These N-malonyltransferases were clearly distinguished from several O-malonyltransferase activities also present in the same seedlings. N-Malonic acid conjugates have been previously isolated from peanut either as a natural constituent or after feeding with xenobiotics. By analogy to the results reported with cultured parsley cells, multiple malonyltransferases in peanut may have a role in vacuolar transport. Crude extracts of young peanut seedlings were incapable of hydrolyzing the respective N-malonic acid conjugates. However, dialyzed extracts of older plants released malonic acid from malonyl-1-aminocyclopropane-1-carboxylic acid but not from malonyl-3,4-dichloroaniline, suggesting that some N-malonic acid conjugates may be metabolized in plants which are approaching senescence.

Acyltransferases↗

Induction and suppression of phytoalexin biosynthesis in cultured cells of safflower, Carthamus tinctorius L., by metabolites of Alternaria carthami Chowdhury.

Cell suspension cultures derived from the safflower variety US-10 respond to treatment with cell wall elicitors from either Phytophthora megasperma f.sp.glycinea or Alternaria carthami Chowdhury by producing polyacetylenic phytoalexins. These polyacetylenes were absent from the uninduced cell cultures. Low concentrations of brefeldin A, a toxin produced by A. carthami, when added to suspension-cultured safflower cells, considerably diminished the accumulation of the phytoalexins following elicitor treatment. Suppression of the synthesis of polyacetylenic phytoalexins suggests a role for brefeldin A in limiting the host range of A. carthami, the causal agent of a leaf and head blight disease in safflower.

Alternaria↗

Further characterization and regulation of malonyl-coenzyme A: flavonoid glucoside malonyltransferases from parsley cell suspension cultures.

Two malonyltransferases, malonyl-CoA:flavone/flavonol 7-O-glucoside malonyltransferase and malonyl-CoA:flavonol 3-O-glucoside malonyltransferase, were purified to apparent homogeneity from uv-irradiated parsley cell cultures. Both purified enzymes appear to be specific for flavonoid glycosides. Additional malonyltransferases, active toward several phenol glucosides other than flavonoids, were present in partially purified 7-O-glucoside malonyltransferase preparations. Antibodies raised against the purified 3-O-glucoside malonyltransferase did not inhibit the activity of the 7-O-glucoside malonyltransferase over a wide antibody concentration range. Determination of the rate of synthesis in vivo of the 3-O-glucoside malonyltransferase after ultraviolet light-pulse induction of parsley cells revealed two maxima at 6 and 30 h, respectively. These results indicate that the induced changes in 3-O-glucoside malonyltransferase activity were the consequence of either a repeated change in the rate of synthesis of one enzyme species or changes in the synthesis rates of more than one enzyme species.

Acyltransferases↗