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H G Floss

Publications and source records attributed to H G Floss.

At least 19 recordsLinked to original sources

Structural determination of alginic acid and the effects of calcium binding as determined by high-field n.m.r.

The nature of the solution conformations of the alginic acid components D-mannuronan (poly-ManA) and L-guluronan (poly-GulA) from Azotobacter vinelandii were investigated by both one- and two-dimensional n.m.r. methods. Unequivocal proton assignments for both polymers as well as their constituent monomer units were made based on chemical-shift theory, coupling constant analysis, and nuclear Overhauser enhancement measurements. These data were used to investigate the interactions of poly-GulA and poly-ManA with Ca2+ ion in aqueous medium. Based on relative crosspeak integrals measured in two-dimensional phase-sensitive NOESY spectra of free and calcium-bound polymer, a model for calcium binding is proposed.

Alginates

Biosynthesis of pyrrolnitrin. Incorporation of 13C, 15N double-labelled D- and L-tryptophan.

Experiments on the incorporation of D- and L-[alanine-3-13C,2-15N]tryptophan into the antibiotic pyrrolnitrin in Pseudomonas aureofaciens confirmed earlier conclusions about the conversion of L-tryptophan into pyrrolnitrin. They also demonstrated that a fraction of the D isomer is incorporated without breakage of the 15N-carbon bond, consistent with the operation of a second pathway from D-tryptophan to pyrrolnitrin. Cell-free experiments confirmed the conversion of 3-(o-aminophenyl)pyrrole into aminopyrrolnitrin but failed to detect enzymatic oxidation of the latter to pyrrolnitrin.

Alanine

Purification and characterization of TDP-D-glucose 4,6-dehydratase from anthracycline-producing streptomycetes.

TDP-D-glucose 4,6-dehydratase, which converts TDP-D-glucose to TDP-D-4-keto-6-deoxyglucose, was purified to near-homogeneity from the daunorubicin and baumycin-producing organism Streptomyces sp. C5 (968-fold purification with a 41% recovery), and from the daunorubicin producer Streptomyces peucetius ATCC 29050 (1000-fold purification with a 37% recovery). The TDP-D-glucose 4,6-dehydratases from Streptomyces sp. C5 and S. peucetius were determined by SDS-PAGE and HPLC gel filtration to be homodimers with subunit relative molecular masses of 39,000 and 36,000, respectively. For the enzymes from both organisms, negligible activity was observed in the absence of added NAD+, or when ADP-glucose, ADP-mannose, GDP-mannose, UDP-glucose or UDP-galactose was substituted for TDP-D-glucose as substrate. For the enzyme from Streptomyces sp. C5, the K'm values for NAD+ and TDP-D-glucose were 19.2 microM and 31.3 microM, respectively. The V'max for TDP-D-glucose was 309 nmol min-1 (mg protein)-1. For the S. peucetius enzyme, the K'm values for NAD+ and TDP-D-glucose were 20.1 microM and 34.7 microM, respectively. V'max values were 180 nmol min-1 (mg protein)-1 for NAD+ and 201 nmol min-1 (mg protein)-1 for TDP-D-glucose. TDP was a good inhibitor of TDP-D-glucose 4,6-dehydratase from both organisms. The N-terminal amino acid sequence of the TDP-D-glucose 4,6-dehydratase from S. peucetius and from the erythromycin producer, Saccharopolyspora erythraea, were similar, whereas the enzyme from Streptomyces sp. C5 contained a different N-terminal amino acid sequence from either of the other two enzymes.

Amino Acid Sequence

Purification and characterization of a novel enoyl coenzyme A reductase from Streptomyces collinus.

A novel NADPH-dependent enoyl reductase, catalyzing the conversion of 1-cyclohexenylcarbonyl coenzyme A (1-cyclohexenylcarbonyl-CoA) to cyclohexylcarbonyl-CoA, was purified to homogeneity from Streptomyces collinus. This enzyme, a dimer with subunits of identical M(r) (36,000), exhibits a Km of 1.5 +/- 0.3 microM for NADPH and 25 +/- 3 microM for 1-cyclohexenylcarbonyl-CoA. It has a pH optimum of 7.5, is most active at 30 degrees C, and is inhibited by both divalent cations and thiol reagents. Two internal peptide sequences were obtained. Ansatrienin A (an antibiotic produced by S. collinus) contains a cyclohexanecarboxylic acid moiety, and it is suggested that the 1-cyclohexenylcarbonyl-CoA reductase described herein catalyzes the final reductive step in the conversion of shikimic acid into this moiety.

Amino Acid Sequence

Biosynthesis of ansatrienin by Streptomyces collinus: cell-free transformations of cyclohexene- and cyclohexadienecarboxylic acids.

Cell-free extracts of Streptomyces collinus were tested with various cyclohexene- and cyclohexadienecarboxylic acids in order to determine the latter stages of the conversion of shikimic acid to cyclohexanecarboxylic acid. It was demonstrated that the final three steps of this process involve reduction of the alpha,beta-double bond of 1(6),2-cyclohexadienylcarbonyl CoA, an isomerization of the double bond of the resulting 2-cyclohexenylcarbonyl CoA to afford 1-cyclohexenylcarbonyl CoA, and a subsequent reduction of the newly formed alpha,beta-double bond. Both of the reduction steps were shown to require NADPH as a cofactor.

Anti-Bacterial Agents

Stereochemistry of methyl transfer catalyzed by tRNA (m5U54)-methyltransferase--evidence for a single displacement mechanism.

tRNA (m5U54)-methyltransferase (RUMT) catalyzes the transfer of a methyl group from S-adenosyl-L-methionine (AdoMet) to the 5-carbon of uridine 54 of tRNA. We have determined the steric course of methyl transfer, using (methyl-R)- and (methyl-S)-[methyl-2H1,3H]-AdoMet as the chiral methyl donors, and tRNA lacking the 5-methyl group at position 54 as the acceptor. Following methyl transfer, ribothymidine was isolated and degraded to chiral acetic acid for configurational analysis. Transfer of the chiral methyl group to U54 proceeded with inversion of configuration of the chiral methyl group, suggesting that RUMT catalyzed methyl transfer occurs by a single SN2 displacement mechanism.

Chromatography, High Pressure Liquid

Stereochemical studies of the C-methylation of deoxycytidine catalyzed by HhaI methylase and the N-methylation of deoxyadenosine catalyzed by EcoRI methylase.

The steric course of methyl group transfer catalyzed by two DNA methylases, HhaI methylase, a DNA (cytosine-5)-methyltransferase, and EcoRI methylase, which methylates at N6 of adenosine, has been studied with (methyl-R)- and (methyl-S)-[methyl-2H1,3H]adenosylmethionine as the methyl donor, using as substrates poly-d(GC) (HhaI) and the dodecamer oligonucleotide duplex d(CGCGAATTCGCG) (EcoRI), respectively. The methylated nucleotides were degraded to convert the chiral methyl groups into acetic acid for configurational analysis. It was found that both enzymatic reactions proceed with inversion of configuration of the methyl group.

Base Sequence

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

Mechanistic studies of two amino acid racemases of broad substrate specificity from Pseudomonas striata and Aeromonas caviae.

The conversion of L-[alpha-2H]alanine in H2O and unlabeled L-alanine in 2H2O into D-alanine, under nearly irreversible conditions, with the amino acid racemase from Pseudomonas striata showed significant internal transfer of the alpha-hydrogen. This result has been interpreted as being indicative of a single base mechanism for the racemization. The relative rates of deuterium incorporation into unlabeled D- and L-methionine by the two amino acid racemases of broad substrate specificity from P. striata and Aeromonas caviae, were measured in 2H2O. The results showed a markedly different pattern, dependent upon the configuration of the initial substrate; with D-methionine as substrate deuterium is incorporated into both enantiomers at approximately the same rate, but with L-methionine as substrate deuterium is incorporated considerably faster into the D than the L enantiomer. These results argue against a single base mechanism of racemization for these enzymes and are best rationalized in terms of a double base model where only one of the bases undergoes proton (deuterium) exchange with the solvent while the amino acid is enzyme-bound. The interpretation of the earlier experiment needs to be considered in light of these results.

Aeromonas

Transcriptional organization and regulation of the nosiheptide resistance gene in Streptomyces actuosus.

The nosiheptide resistance gene (nshR) and a putative regulatory gene (nshA) are found together on a 2326 bp BamHI-PstI DNA fragment isolated from Streptomyces actuosus ATCC 25421. The putative regulatory gene, nshA, situated upstream from the nosiheptide resistance gene in the 2326 bp DNA fragment, contains apparent DNA-binding and RNA-binding domains. Interruption of nshA in the chromosome of S. actuosus alters nosiheptide production, suggesting that nshA is involved in regulation of nosiheptide biosynthesis. Two transcription initiation sites were found upstream of nshA as demonstrated by high-resolution S1 nuclease mapping. A weak transcription start site for nshR was found which initiated transcription from the first nucleotide of the open reading frame. Although a stem-loop structure with apparent termination activity was found between nshA and nshR, readthrough of transcription between nshA and nshR was demonstrated by S1 nuclease mapping of the 3' terminus of the nshA transcript. Time-course S1 experiments of the three promoters (nshA-pl, nshA-p2, nshR-p) indicated highly regulated differential expression of the promoters. nshA-p2 is a strong, constitutive promoter whereas 30% of the total nshA-p1/p2 transcript reads through the terminator and into the nshR gene, accounting for more than half of the total steady-state nshR transcript. The implications of the regulation of nshA and nshR gene expression, as well as the expression of two other linked genes, are presented.

Amino Acid Sequence

Nucleotide sequence and transcriptional analysis of the nosiheptide-resistance gene from Streptomyces actuosus.

The nucleotide (nt) sequence of a 2326-bp BamHI-PstI DNA fragment previously isolated from Streptomyces actuosus ATCC25421 that confers resistance to the thiopeptide antibiotics, nosiheptide (Nh) and thiostrepton (Ts) upon Streptomyces lividans 1326 was determined. Two open reading frames (ORFs) were found in this 2326-bp sequence; one containing 699 nt and another of 822 nt, both reading in the same direction. The Nh-resistance gene determinant (nsh) is encoded by orf822, as determined by the 74% identity of the deduced amino acid sequence of its gene product to that of the 23S rRNA methylase encoded by the Ts-resistance gene (tsr) of Streptomyces azureus. (The respective sequences had a 72% homology.) ORF699, encoded by a gene situated upstream from orf822, contained an apparent alpha-helix-beta-turn-alpha-helix configuration which is common to DNA-binding proteins and suggests that ORF699 may be a regulatory protein. Two transcription start points (tsp) were found upstream from orf699 as demonstrated by high-resolution S1 nuclease mapping. There was also a weak tsp for the nsh gene at the first nt of ORF. Moreover, transcription was observed to read through a stem-loop structure separating the orf699 and nsh genes, as demonstrated by S1 nuclease mapping of the 3' terminus of the orf699 gene, suggesting an antitermination mechanism for regulation of nsh transcription.

Amino Acid Sequence

Stereochemistry and mechanism of the GDP-mannose dehydratase reaction.

The reaction catalyzed by bacterial GDP-mannose dehydratase (E.C. 4.2.1.47), the conversion of GDP-D-mannose to GDP-4-keto-6-deoxymannose (GDP-6-deoxy-D-lyxo-hexos-4-ulose), was studied with (6R)- and (6S)-GDP-D-[4-2H1,6-3H]mannose. Conversion of these stereospecifically labeled substrates in the presence of excess unlabeled GDP-mannose into the 4-keto-6-deoxy derivatives followed by Kuhn-Roth oxidation gave acetic acid samples which were subjected to configurational analysis of the isotopically chiral methyl group. The observed F values of 64 for the material from the (6S) substrate and 31 for that from the (6R) isomer, corresponding to 48% e.e. R and 66% e.e. S configuration, respectively, of the methyl group indicate that (a) the oxidoreductase reaction involves transfer of H-4 to C-6, (b) the transfer is predominantly intramolecular, and (c) the transfer is stereospecific, H-4 replacing the C-6 hydroxyl group with inversion of configuration. A mechanism for the reaction is proposed on the basis of these results.

Carbohydrate Conformation

Formation of 2-methyltryptophan in the biosynthesis of thiostrepton: isolation of S-adenosylmethionine:tryptophan 2-methyltransferase.

L-2-Methyltryptophan was found to be an intermediate in the biosynthesis of the antibiotic thiostrepton. It was isolated from growing cultures and resting cells of Streptomyces laurentii in trapping experiments after the application of labeled L-methionine or L-tryptophan. Its formation from L-tryptophan and S-adenosylmethionine was studied in a cell-free extract of S. laurentii. Although several attempts to purify the soluble methyltransferase by standard methods failed, some of its characteristics could be determined in the crude extract. The enzyme has a sharp pH optimum at pH 7.8. The apparent Km value for S-adenosylmethionine is 120 microM and the Ki value for S-adenosylhomocysteine is 480 microM. The enzyme is not stereoselective with respect to D- or L-tryptophan, but the D-isomer is converted at a slower rate than the L-isomer. Indolepyruvic acid is also methylated, while indole is not a substrate. The methyl group is transferred with retention of its configuration, contrary to most other methyltransferase reactions.

Anti-Bacterial Agents

Biosynthesis of anthraquinones by interspecies cloning of actinorhodin biosynthesis genes in streptomycetes: clarification of actinorhodin gene functions.

Streptomyces galilaeus ATCC 31133 and ATCC 31671, producers of the anthracyclines aclacinomycin A and 2-hydroxyaklavinone, respectively, formed an anthraquinone, aloesaponarin II, when they were transformed with DNA from Streptomyces coelicolor containing four genetic loci, actI, actIII, actIV, and actVII, encoding early reactions in the actinorhodin biosynthesis pathway. Subcloning experiments indicated that a 2.8-kilobase-pair XhoI fragment containing only the actI and actVII loci was necessary for aloesaponarin II biosynthesis by S. galilaeus ATCC 31133. Aloesaponarin II was synthesized via the condensation of 8 acetyl coenzyme A equivalents, followed by a decarboxylation reaction as demonstrated by [1,2-13C2]acetate feeding experiments. S. coelicolor B22 and B159, actVI blocked mutants, also formed aloesaponarin II as an apparent shunt product. Mutants of S. coelicolor blocked in several other steps in actinorhodin biosynthesis did not synthesize aloesaponarin II or other detectable anthraquinones. When S. galilaeus ATCC 31671 was transformed with the DNA carrying the actI, actIII, and actVII loci, the recombinant strain produced both aloesaponarin II and aklavinone, suggesting that the actinorhodin biosynthesis DNA encoded a function able to deoxygenate 2-hydroxyaklavinone to aklavinone. When S. galilaeus ATCC 31671 was transformed with a plasmid carrying only the intact actIII gene (pANT45), aklavinone was formed exclusively. These experiments indicate a function for the actIII gene, which is the reduction of the keto group at C-9 from the carboxy terminus of the assembled polyketide to the corresponding secondary alcohol. In the presence of the actIII gene, anthraquinones or anthracyclines formed as a result of dehydration and aromatization lack an oxygen function on the carbon on which the keto reductase operated. When S. galilaeus ATCC 31671 was transformed with the DNA carrying the actI, actVII, and actIV loci, the recombinant strain produced two novel anthraquinones, desoxyerythrolaccin, the 3-hydroxy analog of aloesaponarin II, and 1-O-methyldesoxyerythrolaccin. The results obtained in these experiments together with earlier data suggest a pathway for the biosynthesis of actinorhodin and related compounds by S. coelicolor.

Anthraquinones

Urdamycins, new angucycline antibiotics from Streptomyces fradiae. IV. Biosynthetic studies of urdamycins A-D.

The biogenetic origin of the angucycline antibiotics urdamycins A-D was studied by feeding experiments with isotope labeled precursors and by NMR analysis. Feeding experiments with [1-13C]acetate and [1,2-13C2]acetate show that the chromophores of urdamycins A and B and the angucycline 4-ring skeleton of the urdamycins C and D chromophores are formed from a single decapolyketide chain. The chromophores of the urdamycins C and D contain additional structural elements which derived from the amino acids tyrosine and tryptophan, respectively. The latter was shown by feeding deuterium-labeled tyrosine and 13C-labeled tryptophan derivatives. Feeding of [1-13C]glucose and of [U-13C3]glycerol proved that the C-glycosidic moiety and the three sugars (2 x L-rhodinose, 1 x D-olivose each) of the urdamycins arise from glucose. Experiments with 14C-labeled urdamycin A, obtained by biosynthesis from [14C]acetate, showed this compound to be a late precursor of the urdamycins C and D.

Acetates

Molecular cloning of the nosiheptide resistance gene from Streptomyces actuosus ATCC 25421.

An 8.5 kb BamHI DNA fragment conferring resistance to nosiheptide, a peptide antibiotic of the 'thiostrepton group', was cloned from Streptomyces actuosus ATCC 25421 in Streptomyces lividans 1326. Two BamHI fragments of S. actuosus, the 8.5 kb fragment and an additional 3.0 kb fragment, hybridized with a thiostrepton resistance gene probe (pIJ30). The 8.5 kb fragment showed a relatively low degree of homology with the thiostrepton resistance gene. The restriction map of the nosiheptide resistance gene isolated here was significantly different from the map of the thiostrepton resistance gene previously published.

Anti-Bacterial Agents