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D Gröger

Publications and source records attributed to D Gröger.

At least 19 recordsLinked to original sources

Differential regulation and distribution of acridone synthase in Ruta graveolens.

Cell suspension cultures of Ruta graveolens L. accumulate polyketide metabolites such as acridone alkaloids and flavonoid pigments. Whereas flavonoid synthesis is induced by light, the production of alkaloids can be enhanced in dark-cultured cells by treatment with fungal elicitors. Acridone synthase (ACS) catalyzes the committed condensing reaction of acridone biosynthesis yielding 1,3-dihydroxy-N-methylacridone from N-methylanthraniloyl- and malonyl-CoAs. The reaction proceeds in a manner analogous to that of chalcone synthase (CHS) which catalyzes the first committed step in flavonoid biosynthesis and cDNA and protein sequences of Ruta ACS possess a high degree of sequence homology to heterologous CHSs. ACS transcript abundance and specific activity were monitored in cultured R. graveolens cells irradiated either continuously with white light or treated with fungal elicitor over a period of 24 h and found to increase transiently upon elicitor treatment and to decrease upon light irradiation. Immunodetection with a rabbit polyclonal ACS antiserum revealed that the amounts of ACS polypeptide decreased slightly in light-irradiated cells but increased in elicitor-treated Ruta cells. Fluorescence microscopy and tissue print hybridizations were employed to aid in localizing the sites of storage and biosynthesis of acridone alkaloids in Ruta plants. Yellow fluorescing alkaloids were detected particularly in root tissue adjacent to the rhizodermis, but also in the endodermis and vascular tissue of the hypocotyl. ACS transcript abundance in situ followed the same spatial pattern, indicating that the synthesis of acridones likely proceeds at all sites of deposition rather than exclusively in the root. Expression in planta and the induction response of ACS suggest that the alkaloids serve as phytoanticipins or phytoalexins in the defense of Ruta particularly to soil-borne pathogens or as feeding deterrents.

Acridines↗

Molecular cloning and heterologous expression of acridone synthase from elicited Ruta graveolens L. cell suspension cultures.

Cell suspension cultures of Ruta graveolens L. produce a variety of acridone alkaloids, and the accumulation can be stimulated by the addition of fungal elicitors. Acridone synthase, the enzyme catalyzing the synthesis of 1,3-dihydroxy-N-methylacridone from N-methylanthraniloyl-CoA and malonyl-CoA, had been isolated from these cells, and the partial enzyme polypeptide sequence, elucidated from six tryptic fragments, revealed homology to heterologous chalcone synthases. Poly(A)+ RNA was isolated from Ruta cells that had been treated for 6 h with a crude cell wall elicitor from Phytophthora megasperma f. sp. glycinea, and a cDNA library was constructed in lambda 2AP. Clones harboring acridone synthase cDNA were isolated from the library by screening with a synthetic oligonucleotide probe complementary to a short stretch of sequence of the enzyme peptide with negligible homology to chalcone synthases. The identity of the clones was substantiated by DNA sequencing and by recognition of five additional peptides, determined previously from tryptic acridone synthase digests, in the translated sequence. An insert of roughly 1.4 kb encoded the complete acridone synthase, and alignments at both DNA and protein levels corroborated the high degree of homology to chalcone synthases. Expression of the enzyme in vector pET-11c in the Escherichia coli pLysS host strain proved the identity of the cloned cDNA. The heterologous enzyme in the crude E. coli extract exhibit high acridone but no chalcone synthase activity. The results were fully supported by northern blot hybridizations which revealed that the specific transcript abundance did not increase but rather decreased upon white light irradiation of cultured Ruta graveolens L. cells, a condition that commonly induces the abundance of chalcone synthase transcripts.

Acyltransferases↗

Steric course of the N-methylation in the biosynthesis of ergot alkaloids by Claviceps purpurea.

Using the chiral methyl group methodology, the methylation step in the biosynthesis of ergot alkaloids catalyzed by the enzyme AdoMet:dimethylallyltryptophan N-methyltransferase was found to proceed with net inversion of methyl group configuration. The enzyme thus conforms to the majority of methyltransferases studied which mediate a direct SN2 transfer of the methyl group from AdoMet to the acceptor nucleophile in a ternary enzyme substrate complex.

Claviceps↗

[Synthesis and pharmacologic properties of pranolium and its optical isomers].

Propranolol is a well-known powerful betareceptor-blocking agent. Its quaternary dimethyl derivative, designated as pranolium was firstly prepared by Lucchesi. Compared to propranolol it possesses no betareceptor-blocking activity and no local anaesthetic properties but shows the same antiarrhythmic action as the starting material. The synthesis of pranolium and its optical isomers starting from the corresponding propranolol derivatives is described. Their pharmacological activities have been tested. No significant differences regarding the pharmacological action could be observed.

Aconitine↗

Influence of tryptophan and related compounds on ergot alkaloid formation in Claviceps purpurea (FR.) Tul.

L-Tryptophan did not exert any influence on peptide alkaloid formation in an ergotamine and in an ergosine-accumulating C. purpurea strain. A different picture was observed in a series of related C. purpurea strains. Tryptophan showed a slight stimulatory effect on the ergotoxine producer Pepty 695/S. A blocked mutant of it, designated as Pepty 695/ch which was able to accumulate secoclavines gave similar results. In a high-yielding elymoclavine strain Pepty 695/e, the progeny of the former one, tryptophan up to a concentration of 25 mM stimulated remarkably clavine biosynthesis. Furthermore, tryptophan could overcome the block of synthesis by inorganic phosphate. Increased specific activities of chanoclavine cyclase but not DMAT synthetase were observed in cultures of strain Pepty 695/e supplemented with tryptophan. 5-Methyltryptophan and bioisosteres of tryptophan were ineffective in alkaloid stimulation. These results are compared with those obtained with the grass ergot strain SD 58 and discussed with the relation to other induction phenomena.

Chemical Phenomena↗

Changes in cytoplasmic ultrastructure during submerged cultivation of a peptide alkaloids-producing strain of Claviceps purpurea (Fr.) Tul.

A strain of Claviceps purpurea, designated Pepty 695/S produces ergotoxine alkaloids under particular conditions of fermentation. The onset of alkaloid synthesis occurs around the second day of cultivation. Alkaloid formation is connected with morphological and ultrastructural changes. In the first 3-5 days of cultivation short thickened, septated hyphae, organized in plectenchymatic pellets as well as large single cells are formed. The hyphae are ultrastructurally characterized by increasing number of lipid droplets, deposits of glycogen and by extended ER membranes, which apparently may form numerous vesicles. The correlations between lipid and alkaloid synthesis are discussed.

Cell Nucleus↗

[Effect of amitrol on Claviceps fusiformis, strain SD 58].

The influence of amitrole (3-amino-1,2,4-triazole) on growth, alkaloid formation and on some aromatic as well as ergoline pathway specific enzymes were studied in Claviceps strain, SD 58. In a phosphate-rich medium the addition of amitrole can partially reverse the alkaloid-depressing effect of phosphate. Using a typical fermentation medium amitrole reduces the activities of ergoline specific enzymes but increases drastically tryptophan synthase activity and to a lesser extent transaminase of aromatic amino acids.

Alkyl and Aryl Transferases↗

Lysergylpeptides in the course of peptide ergot alkaloid formation.

Radioactive d-lysergyl-Val-Leu-OMe, d-lysergyl-Val-Val-OMe and d-lysergyl-Val-Val-Pro-OMe were synthetized according to the dicyclohexylcarbodiimide/1-hydroxybenzotriazole procedure. These compounds are not used by intact mycelium of Claviceps as immediate precursors for cyclolalkaloid biosynthesis.

Amino Acid Sequence↗