• Title of article

    Mechanism and specificity of the terminal thioesterase domain from the erythromycin polyketide synthase Original Research Article

  • Author/Authors

    Rajesh S Gokhale، نويسنده , , Daniel Hunziker، نويسنده , , David E. Cane، نويسنده , , Chaitan Khosla، نويسنده ,

  • Issue Information
    ماهنامه با شماره پیاپی سال 1999
  • Pages
    9
  • From page
    117
  • To page
    125
  • Abstract
    Background Polyketides are important compounds with antibiotic and anticancer activities. Several modular polyketide synthases (PKSs) contain a terminal thioesterase (TE) domain probably responsible for the release and concomitant cyclization of the fully processed polyketide chain. Because the TE domain influences qualitative aspects of product formation by engineered PKSs, its mechanism and specificity are of considerable interest. Results The TE domain of the 6-deoxyerythronolide B synthase was overexpressed in Escherichia coli. When tested against a set of N-acetyl cysteamine thioesters the TE domain did not act as a cyclase, but showed significant hydrolytic specificity towards substrates that mimic important features of its natural substrate. Also the overall rate of polyketide chain release was strongly enhanced by a covalent connection between the TE domain and the terminal PKS module (by as much as 100-fold compared with separate TE and PKS ‘domains’). Conclusions The inability of the TE domain alone to catalyze cyclization suggests that macrocycle formation results from the combined action of the TE domain and a PKS module. The chain-length and stereochemical preferences of the TE domain might be relevant in the design and engineered biosynthesis of certain novel polyketides. Our results also suggest that the TE domain might loop back to catalyze the release of polyketide chains from both terminal and pre-terminal modules, which may explain the ability of certain naturally occurring PKSs, such as the picromycin synthase, to generate both 12-membered and 14-membered macrolide antibiotics.
  • Keywords
    * hydrolytic specificity , * 6-deoxyerythronolide synthase , * N-acetyl cysteamine thioester , * polyketide synthase , * thioesterase
  • Journal title
    Chemistry and Biology
  • Serial Year
    1999
  • Journal title
    Chemistry and Biology
  • Record number

    1158102