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PMID: 10935930 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Tolerance and specificity of recombinant 6-methylsalicyclic acid synthase.

Metabolic engineering ·Vol. 1 ·No. 2 ·1999-04-00 ·Pages 180-7

Richardson MT, Pohl NL, Kealey JT, Khosla C

Abstract

6-Methylsalicylic acid synthase (MSAS), a fungal polyketide synthase from Penicillium patulum, is perhaps the simplest polyketide synthase that embodies several hallmarks of this family of multifunctional enzymes--a large multidomain protein, a high degree of specificity toward acetyl-CoA and malonyl-CoA substrates, chain length control, and regiospecific ketoreduction. MSAS has recently been functionally expressed in Escherichia coli and Saccharomyces cerevisiae, leading to the engineered biosynthesis of 6-methylsalicylic acid in these hosts. These developments have set the stage for detailed mechanistic studies of this model system. A three--step purification procedure was developed to obtain >95% pure MSAS from extracts of E. coli. As reported earlier for the enzyme isolated from P. patulum, the recombinant enzyme produced 6-methylsalicylic acid (a reduced tetraketide) in the presence of acetyl-CoA, malonyl-CoA, and NADPH, but triacetic acid lactone (an unreduced triketide) in the absence of NADPH. Consistent with this observation, point mutations in the highly conserved nucleotide-binding motif of the ketoreductase domain also led to production of triacetic acid lactone in vivo. The enzyme showed some tolerance toward nonnatural primer units including propionyl- and butyryl-CoA, but was incapable of incorporating extender units from (R, S)-methylmalonyl-CoA. Interestingly, MSAS readily accepted the N-acetylcysteamine (NAC) analog of malonyl-CoA as a substrate. NAC thioesters are simple, cost-effective analogs of CoA thioester substrates, and therefore provide a facile strategy for probing the molecular recognition features of polyketide synthases using unnatural building blocks. The ability to produce 4-hydroxy-6-methyl-2-pyrone in both E. coli and yeast illustrates the feasibility of metabolic engineering of these hosts to produce unnatural polyketides. Finally, the abundant source of recombinant MSAS described here provides an opportunity to study this fascinating model system using a combination of structural, mechanistic, and mutagenesis approaches.

MeSH Terms
Acetyl Coenzyme A/metabolism Acyltransferases/chemistry,genetics,metabolism Amino Acid Sequence Base Sequence Cloning, Molecular/methods Escherichia coli/enzymology Kinetics Ligases/chemistry,genetics,metabolism Malonyl Coenzyme A/metabolism Multienzyme Complexes/chemistry,genetics,metabolism Mutagenesis, Site-Directed Oxidoreductases/chemistry,genetics,metabolism Penicillium/enzymology,genetics Recombinant Proteins/chemistry,metabolism Saccharomyces cerevisiae/enzymology Substrate Specificity
Chemicals
Multienzyme Complexes Recombinant Proteins Malonyl Coenzyme A Acetyl Coenzyme A Oxidoreductases Acyltransferases 6-methylsalicylic acid synthetase Ligases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Richardson M T
MR Chemistry, NP Chemical Engineering, Stanford University, California 94305-5025, USA.
Pohl N L
Kealey J T
Khosla C
Article Info
Journal
Metabolic engineering
Abbr.
Metab Eng
ISSN
1096-7176
Published
1999-04-00
Pages
180-7
Language
English
Region
Belgium
NLM ID
9815657
Subset
IM
Grants
NIGMS NIH HHS · 1 F32 GM19540-01 · United States
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