Structural insights into dehydratase substrate selection for the borrelidin and fluvirucin polyketide synthases

Author:

Barajas Jesus F12,McAndrew Ryan P34,Thompson Mitchell G23,Backman Tyler W H2356,Pang Bo236,de Rond Tristan23,Pereira Jose H34,Benites Veronica T123,Martín Héctor García123,Baidoo Edward E K123,Hillson Nathan J123,Adams Paul D2345,Keasling Jay D23567

Affiliation:

1. Department of Energy Agile BioFoundry 94608 Emeryville CA USA

2. 0000 0001 2231 4551 grid.184769.5 Biological Systems and Engineering Division Lawrence Berkeley National Laboratory 94720 Berkeley CA USA

3. 0000 0004 0407 8980 grid.451372.6 Joint BioEnergy Institute 5885 Hollis St. 4th Floor 94608 Emeryville CA USA

4. 0000 0001 2231 4551 grid.184769.5 Molecular Biophysics and Integrated Bioimaging Division Lawrence Berkeley National Laboratory 94720 Berkeley CA USA

5. 0000 0001 2181 7878 grid.47840.3f Department of Bioengineering University of California 94720 Berkeley CA USA

6. 0000 0001 2181 7878 grid.47840.3f QB3 Institute University of California, Berkeley 94608 Emeryville CA USA

7. 0000 0001 2181 7878 grid.47840.3f Department of Chemical and Biomolecular Engineering University of California, Berkeley 94720 Berkeley CA USA

Abstract

Abstract Engineered polyketide synthases (PKSs) are promising synthetic biology platforms for the production of chemicals with diverse applications. The dehydratase (DH) domain within modular type I PKSs generates an α,β-unsaturated bond in nascent polyketide intermediates through a dehydration reaction. Several crystal structures of DH domains have been solved, providing important structural insights into substrate selection and dehydration. Here, we present two DH domain structures from two chemically diverse PKSs. The first DH domain, isolated from the third module in the borrelidin PKS, is specific towards a trans-cyclopentane-carboxylate-containing polyketide substrate. The second DH domain, isolated from the first module in the fluvirucin B1 PKS, accepts an amide-containing polyketide intermediate. Sequence-structure analysis of these domains, in addition to previously published DH structures, display many significant similarities and key differences pertaining to substrate selection. The two major differences between BorA DH M3, FluA DH M1 and other DH domains are found in regions of unmodeled residues or residues containing high B-factors. These two regions are located between α3–β11 and β7–α2. From the catalytic Asp located in α3 to a conserved Pro in β11, the residues between them form part of the bottom of the substrate-binding cavity responsible for binding to acyl-ACP intermediates.

Funder

Bioenergy Technologies Office

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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