An Unusual Fatty Acyl:Adenylate Ligase (FAAL)-Acyl Carrier Protein (ACP) Didomain in Ambruticin Biosynthesis

Chembiochem. 2018 May 18;19(10):1006-1011. doi: 10.1002/cbic.201800084. Epub 2018 Apr 18.

Abstract

The divinylcyclopropane (DVC) fragment of the ambruticins is proposed to be formed by a unique polyene cyclisation mechanism, in which the unusual didomain AmbG plays a key role. It is proposed to activate the branched thioester carboxylic acid resulting from polyene cyclisation and to transfer it to its associated acyl carrier protein (ACP). After oxidative decarboxylation, the intermediate is channelled back into polyketide synthase (PKS) processing. AmbG was previously annotated as an adenylation-thiolation didomain with a very unusual substrate selectivity code but has not yet been biochemically studied. On the basis of sequence and homology model analysis, we reannotate AmbG as a fatty acyl:adenylate ligase (FAAL)-acyl carrier protein didomain with unusual substrate specificity. The expected adenylate-forming activity on fatty acids was confirmed by in vitro studies. AmbG also adenylates a number of structurally diverse carboxylic acids, including functionalised fatty acids and unsaturated and aromatic carboxylic acids. HPLC-MS analysis and competition experiments show that AmbG preferentially acylates its ACP with long-chain hydrophobic acids and tolerates a π system and a branch near the carboxylic acid. AmbG is the first characterised example of a FAAL-ACP didomain that is centrally located in a PKS and apparently activates a polyketidic intermediate. This is an important step towards deeper biosynthetic studies such as partial reconstitution of the ambruticin pathway to elucidate DVC formation.

Keywords: adenylation; ligases; polyketide synthases; polyketides; substrate specificity.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Acyl Carrier Protein / chemistry
  • Acyl Carrier Protein / metabolism*
  • Bacteria / chemistry
  • Bacteria / metabolism*
  • Bacterial Proteins / chemistry
  • Bacterial Proteins / metabolism*
  • Biosynthetic Pathways*
  • Cyclopropanes / metabolism
  • Decarboxylation
  • Ligases / chemistry
  • Ligases / metabolism*
  • Oxidation-Reduction
  • Polyketide Synthases / chemistry
  • Polyketide Synthases / metabolism*
  • Protein Domains
  • Pyrans / metabolism
  • Substrate Specificity

Substances

  • Acyl Carrier Protein
  • Bacterial Proteins
  • Cyclopropanes
  • Pyrans
  • Polyketide Synthases
  • cyclopropane
  • Ligases
  • ambruticin