| Literature DB >> 31969391 |
Alexandra A Richter1, Stefanie Kobus2, Laura Czech1, Astrid Hoeppner2, Jan Zarzycki3, Tobias J Erb4, Lukas Lauterbach5, Jeroen S Dickschat5, Erhard Bremer6, Sander H J Smits7.
Abstract
Ectoine is a solute compatible with the physiologies of both prokaryotic and eukaryotic cells and is widely synthesized by bacteria as an osmotic stress protectant. Because it preserves functional attributes of proteins and macromolecular complexes, it is considered a chemical chaperone and has found numerous practical applications. However, the mechanism of its biosynthesis is incompletely understood. The second step in ectoine biosynthesis is catalyzed by l-2,4-diaminobutyrate acetyltransferase (EctA; EC 2.3.1.178), which transfers the acetyl group from acetyl-CoA to EctB-formed l-2,4-diaminobutyrate (DAB), yielding N-γ-acetyl-l-2,4-diaminobutyrate (N-γ-ADABA), the substrate of ectoine synthase (EctC). Here, we report the biochemical and structural characterization of the EctA enzyme from the thermotolerant bacterium Paenibacillus lautus (Pl). We found that (Pl)EctA forms a homodimer whose enzyme activity is highly regiospecific by producing N-γ-ADABA but not the ectoine catabolic intermediate N-α-acetyl-l-2,4-diaminobutyric acid. High-resolution crystal structures of (Pl)EctA (at 1.2-2.2 Å resolution) (i) for its apo-form, (ii) in complex with CoA, (iii) in complex with DAB, (iv) in complex with both CoA and DAB, and (v) in the presence of the product N-γ-ADABA were obtained. To pinpoint residues involved in DAB binding, we probed the structure-function relationship of (Pl)EctA by site-directed mutagenesis. Phylogenomics shows that EctA-type proteins from both Bacteria and Archaea are evolutionarily highly conserved, including catalytically important residues. Collectively, our biochemical and structural findings yielded detailed insights into the catalytic core of the EctA enzyme that laid the foundation for unraveling its reaction mechanism.Entities:
Keywords: L-2,4-diaminobutyrate; acetyl coenzyme A (acetyl-CoA); acetylation; acetyltransferase; chemical chaperone; crystal structure; enzyme; reaction mechanism; stress response; structural biology
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Year: 2020 PMID: 31969391 PMCID: PMC7049965 DOI: 10.1074/jbc.RA119.011277
Source DB: PubMed Journal: J Biol Chem ISSN: 0021-9258 Impact factor: 5.157