Activation and silencing of secondary metabolites in Streptomyces albus and Streptomyces lividans after transformation with cosmids containing the thienamycin gene cluster from Streptomyces cattleya
Activation and silencing of antibiotic production was achieved in Streptomyces albus J1074 and Streptomyces lividans TK21 after introduction of genes within the thienamycin cluster from S. cattleya. Dramatic phenotypic and metabolic changes, involving activation of multiple silent secondary metabolites and silencing of others normally produced, were found in recombinant strains harbouring the thienamycin cluster in comparison to the parental strains. In S. albus, ultra-performance liquid chromatography purification and NMR structural elucidation revealed the identity of four structurally related activated compounds: the antibiotics paulomycins A, B and the paulomenols A and B. Four volatile compounds whose biosynthesis was switched off were identified by gas chromatography-mass spectrometry analyses and databases comparison as pyrazines; including tetramethylpyrazine, a compound with important clinical applications to our knowledge never reported to be produced by Streptomyces. In addition, this work revealed the potential of S. albus to produce many others secondary metabolites normally obtained from plants, including compounds of medical relevance as dihydro-beta-agarofuran and of interest in perfume industry as beta-patchoulene, suggesting that it might be an alternative model for their industrial production. In S. lividans, actinorhodins production was strongly activated in the recombinant strains whereas undecylprodigiosins were significantly reduced. Activation of cryptic metabolites in Streptomyces species might represent an alternative approach for pharmaceutical drug discovery.
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[Anonymous], 2012, Molecular Cloning: A Laboratory Manual
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Univ Calif San Francisco, Dept Bioengn & Therapeut Sci, San Francisco, CA 94158 USA
Univ Calif San Francisco, Calif Inst Quantitat Biosci, San Francisco, CA 94158 USAUniv Tubingen, Interfac Inst Microbiol & Infect Med Tubingen, D-72076 Tubingen, Germany
Fischbach, Michael A.
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Breitling, Rainer
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Univ Groningen, Groningen Biomol Sci & Biotechnol Inst, Groningen Bioinformat Ctr, NL-9747 AG Groningen, Netherlands
Univ Manchester, Fac Life Sci, Manchester Inst Biotechnol, Manchester M1 7DN, Lancs, EnglandUniv Tubingen, Interfac Inst Microbiol & Infect Med Tubingen, D-72076 Tubingen, Germany
Breitling, Rainer
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Takano, Eriko
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Univ Groningen, Groningen Biomol Sci & Biotechnol Inst, Dept Microbial Physiol, NL-9747 AG Groningen, Netherlands
Univ Manchester, Fac Life Sci, Manchester Inst Biotechnol, Manchester M1 7DN, Lancs, EnglandUniv Tubingen, Interfac Inst Microbiol & Infect Med Tubingen, D-72076 Tubingen, Germany
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Univ Calif San Francisco, Dept Bioengn & Therapeut Sci, San Francisco, CA 94158 USA
Univ Calif San Francisco, Calif Inst Quantitat Biosci, San Francisco, CA 94158 USAUniv Tubingen, Interfac Inst Microbiol & Infect Med Tubingen, D-72076 Tubingen, Germany
Fischbach, Michael A.
;
Breitling, Rainer
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Univ Groningen, Groningen Biomol Sci & Biotechnol Inst, Groningen Bioinformat Ctr, NL-9747 AG Groningen, Netherlands
Univ Manchester, Fac Life Sci, Manchester Inst Biotechnol, Manchester M1 7DN, Lancs, EnglandUniv Tubingen, Interfac Inst Microbiol & Infect Med Tubingen, D-72076 Tubingen, Germany
Breitling, Rainer
;
Takano, Eriko
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Univ Groningen, Groningen Biomol Sci & Biotechnol Inst, Dept Microbial Physiol, NL-9747 AG Groningen, Netherlands
Univ Manchester, Fac Life Sci, Manchester Inst Biotechnol, Manchester M1 7DN, Lancs, EnglandUniv Tubingen, Interfac Inst Microbiol & Infect Med Tubingen, D-72076 Tubingen, Germany