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Biomimetic synthesis and optimization of cyclic peptide antibiotics

Author

Listed:
  • Rahul M. Kohli

    (Harvard Medical School)

  • Christopher T. Walsh

    (Harvard Medical School)

  • Michael D. Burkart

    (Harvard Medical School
    University of California, San Diego)

Abstract

Molecules in nature are often brought to a bioactive conformation by ring formation (macrocyclization)1. A recurrent theme in the enzymatic synthesis of macrocyclic compounds by non-ribosomal and polyketide synthetases is the tethering of activated linear intermediates through thioester linkages to carrier proteins, in a natural analogy to solid-phase synthesis2. A terminal thioesterase domain of the synthetase catalyses release from the tether and cyclization3,4. Here we show that an isolated thioesterase can catalyse the cyclization of linear peptides immobilized on a solid-phase support modified with a biomimetic linker, offering the possibility of merging natural-product biosynthesis with combinatorial solid-phase chemistry. Starting from the cyclic decapeptide antibiotic tyrocidine A, this chemoenzymatic approach allows us to diversify the linear peptide both to probe the enzymology of the macrocyclizing enzyme, TycC thioesterase, and to create a library of cyclic peptide antibiotic products. We have used this method to reveal natural-product analogues of potential therapeutic utility; these compounds have an increased preference for bacterial over eukaryotic membranes and an improved spectrum of activity against some common bacterial pathogens.

Suggested Citation

  • Rahul M. Kohli & Christopher T. Walsh & Michael D. Burkart, 2002. "Biomimetic synthesis and optimization of cyclic peptide antibiotics," Nature, Nature, vol. 418(6898), pages 658-661, August.
  • Handle: RePEc:nat:nature:v:418:y:2002:i:6898:d:10.1038_nature00907
    DOI: 10.1038/nature00907
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