Insights into E. coli Cyclopropane Fatty Acid Synthase (CFAS) Towards Enantioselective Carbene Free Biocatalytic Cyclopropanation.

Author:

Omar Iman12ORCID,Crotti Michele12ORCID,Li Chuhan1ORCID,Pisak Krisztina1,Czemerys Blazej12,Ferla Salvatore3ORCID,van Noord Aster4,Paul Caroline E.4ORCID,Karu Kersti1ORCID,Ozbalci Cagakan25ORCID,Eggert Ulrike25ORCID,Lloyd Richard6,Barry Sarah M.2ORCID,Castagnolo Daniele1ORCID

Affiliation:

1. Department of Chemistry University College London 20 Gordon Street WC1H 0AJ London United Kingdom

2. Department of Chemistry Faculty of Natural Mathematical and Engineering Sciences King's College London 7 Trinity Street SE1 1DB London United Kingdom

3. Medical School Faculty of Medicine Health and Life Science Swansea University Swansea SA2 8PP

4. Department of Biotechnology Delft University of Technology Van der Maasweg 9 2629HZ Delft, The Netherlands

5. Randall Centre for Cell and Molecular Biophysics Faculty of Life Sciences and Medicine King's College London London SE1 1UL United Kingdom

6. DSD Chemistry GSK Medicines Research Centre, Gunnels Wood Road Stevenage SG1 2NY

Abstract

AbstractCyclopropane fatty acid synthases (CFAS) are a class of S‐adenosylmethionine (SAM) dependent methyltransferase enzymes able to catalyse the cyclopropanation of unsaturated phospholipids. Since CFAS enzymes employ SAM as a methylene source to cyclopropanate alkene substrates, they have the potential to be mild and more sustainable biocatalysts for cyclopropanation transformations than current carbene‐based approaches. This work describes the characterisation of E. coli CFAS (ecCFAS) and its exploitation in the stereoselective biocatalytic synthesis of cyclopropyl lipids. ecCFAS was found to convert phosphatidylglycerol (PG) to methyl dihydrosterculate 1 with up to 58 % conversion and 73 % ee and the absolute configuration (9S,10R) was established. Substrate tolerance of ecCFAS was found to be correlated with the electronic properties of phospholipid headgroups and for the first time ecCFAS was found to catalyse cyclopropanation of both phospholipid chains to form dicyclopropanated products. In addition, mutagenesis and in silico experiments were carried out to identify the enzyme residues with key roles in catalysis and to provide structural insights into the lipid substrate preference of ecCFAS. Finally, the biocatalytic synthesis of methyl dihydrosterculate 1 and its deuterated analogue was also accomplished combining recombinant ecCFAS with the SAM regenerating AtHMT enzyme in the presence of CH3I and CD3I respectively.

Funder

Biotechnology and Biological Sciences Research Council

Chinese Government Scholarship

H2020 Marie Skłodowska-Curie Actions

H2020 European Research Council

Publisher

Wiley

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