Literature DB >> 6805424

Biosynthesis of monobactam compounds: origin of the carbon atoms in the beta-lactam ring.

J O'Sullivan, A M Gillum, C A Aklonis, M L Souser, R B Sykes.   

Abstract

The biosynthesis of monobactams by strains of Chromobacterium violaceum, Acetobacter sp., and Agrobacterium radiobacter was studied. Monobactams were produced during logarithmic growth by C. violaceum and Acetobacter sp. and during late log growth on glycerol and in stationary phase by A. radiobacter. The addition of various amino acids failed to significantly stimulate monobactam production in any of the producing organisms. Several 14C-amino acids and pyruvate were incorporated in vivo into monobactams. Serine, glycine, and cysteine were better incorporated than alanine or aspartate, whereas an excess of nonradioactive serine depressed the incorporation of labelled cysteine, glycine, and pyruvate. A comparison of [1-14C] glycine and [2-14C] glycine incorporation data suggests that glycine was first converted to serine. With a mixture of [U-14C[serine and [3-3H]serine, C. violaceum synthesized a monobactam with a complete retention of tritium, whereas with a [U-14C] cystine and [3-3H] cystine mixture, there was an extensive loss of C-3 tritium. Acetobacter sp. and A. radiobacter also utilized the double-labeled serine without the loss of tritium in their respective monobactams. It appears, therefore that in the three organisms, the carbon atoms of the beta-lactam ring of the monobactam are derived directly from serine without the loss of the C-3 hydrogen atoms, probably by an SN2 ring closure mechanism. With [methyl-14C] methionine, most of the radioactivity in the monobactam from Acetobacter sp. was in the methyl moiety of the beta-lactam ring methoxyl group.

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Year:  1982        PMID: 6805424      PMCID: PMC181941          DOI: 10.1128/AAC.21.4.558

Source DB:  PubMed          Journal:  Antimicrob Agents Chemother        ISSN: 0066-4804            Impact factor:   5.191


  14 in total

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Review 4.  Amino acid biosynthesis and its regulation.

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5.  Monocyclic beta-lactam antibiotics produced by bacteria.

Authors:  R B Sykes; C M Cimarusti; D P Bonner; K Bush; D M Floyd; N H Georgopapadakou; W M Koster; W C Liu; W L Parker; P A Principe; M L Rathnum; W A Slusarchyk; W H Trejo; J S Wells
Journal:  Nature       Date:  1981-06-11       Impact factor: 49.962

6.  The conversion of cephalosporins to 7 alpha-methoxycephalosporins by cell-free extracts of Streptomyces clavuligerus.

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8.  Sulfazecin and isosulfazecin, novel beta-lactam antibiotics of bacterial origin.

Authors:  A Imada; K Kitano; K Kintaka; M Muroi; M Asai
Journal:  Nature       Date:  1981-02-12       Impact factor: 49.962

9.  Incorporation of labeled precursors into A16886B, a novel -lactam antibiotic produced by Streptomyces clavuligerus.

Authors:  J G Whitney; D R Brannon; J A Mabe; K J Wicker
Journal:  Antimicrob Agents Chemother       Date:  1972-03       Impact factor: 5.191

10.  Biosynthesis of a 7-alpha-methoxycephalosporin. Incorporation of molecular oxygen.

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  4 in total

1.  Identification and Characterization of the Sulfazecin Monobactam Biosynthetic Gene Cluster.

Authors:  Rongfeng Li; Ryan A Oliver; Craig A Townsend
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Review 2.  Convergent biosynthetic pathways to β-lactam antibiotics.

Authors:  Craig A Townsend
Journal:  Curr Opin Chem Biol       Date:  2016-09-29       Impact factor: 8.822

3.  Sulfur metabolism in the biosynthesis of monobactams.

Authors:  J O'Sullivan; M L Souser; C C Kao; C A Aklonis
Journal:  Antimicrob Agents Chemother       Date:  1983-04       Impact factor: 5.191

Review 4.  Roles of 2-oxoglutarate oxygenases and isopenicillin N synthase in β-lactam biosynthesis.

Authors:  Patrick Rabe; Jos J A G Kamps; Christopher J Schofield; Christopher T Lohans
Journal:  Nat Prod Rep       Date:  2018-08-15       Impact factor: 13.423

  4 in total

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