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Chemoenzymatic Synthesis of Select Intermediates and Natural Products of the Desferrioxamine E Siderophore Pathway
Authors:Katherine M. Hoffmann  Jason S. Kingsbury  Nathan L. March  Yoojin Jang  James H. Nguyen  Miranda M. Hutt
Affiliation:Department of Chemistry, Swenson Science Center, California Lutheran University, 60 West Olsen Rd. #3700, Thousand Oaks, CA 91360, USA
Abstract:The NIS synthetase family of enzymes responsible for the biosynthesis of siderophores is increasingly associated with bacterial virulence. Proteins in this class represent outstanding potential drug targets, assuming that basic biochemical and structural characterizations can be completed. Towards this goal, we have mated an improved synthesis of the non-commercial amino acid N-hydroxy-N-succinylcadaverine (HSC, 6) with an isothermal titration calorimetry (ITC) assay that profiles the iterative stages of HSC trimerization and macrocyclization by NIS synthetase DesD from Streptomyces coelicolor. HSC synthesis begins with multigram-scale Gabrielle and tert-butyl N-(benzyloxy)carbamate alkylations of 1-bromo-5-chloropentane following prior literature, but the end-game reported herein has two advantages for greater material throughput: (1) hydrogenolysis of benzyl ether and Cbz blocking groups is best accomplished with Pearlman’s catalyst at 40 psi of H2 and (2) purification of neutral (zwitterionic) HSC is effected by simple flash chromatography over silica gel in MeOH. HSC is subsequently shown to be a substrate for NIS synthetase DesD, which catalyzes three successive amide bond syntheses via adenyl monophosphate ester intermediates. We quantify and present the iterative and overall enzyme kinetic constants associated with formation of the cyclotrimeric siderophore desferrioxamine E (dfoE, 1).
Keywords:siderophore   NRPS-independent siderophore (NIS) synthesis   N-hydroxy-N-succinylcadaverine (HSC)   ferric chelator   macrocycle   trihydroxamic acid   hydroxamate   bacterial virulence   antibacterial   antibiotic
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