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The Mechanism of Peptidoglycan O-acetylation in Gram-negative Bacteria Typifies Bacterial MBOAT-SGNH Acyltransferases

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Journal bioRxiv
Date 2024 Sep 30
PMID 39345430
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Abstract

Bacterial cell envelope polymers are commonly modified with acyl groups that provide fitness advantages. Many polymer acylation pathways involve pairs of membrane-bound -acyltransferase (MBOAT) and SGNH family proteins. As an example, the MBOAT protein PatA and the SGNH protein PatB are required in Gram-negative bacteria for peptidoglycan O-acetylation. The mechanism for how MBOAT-SGNH transferases move acyl groups from acyl-CoA donors made in the cytoplasm to extracellular polymers is unclear. Using the peptidoglycan -acetyltransferase proteins PatAB, we explore the mechanism of MBOAT-SGNH pairs. We find that the MBOAT protein PatA catalyzes auto-acetylation of an invariant Tyr residue in its conserved C-terminal hexapeptide motif. We also show that PatB can use a synthetic hexapeptide containing an acetylated tyrosine to donate an acetyl group to a peptidoglycan mimetic. Finally, we report the structure of PatB, finding that it has structural features that shape its activity as an -acetyltransferase and distinguish it from other SGNH esterases and hydrolases. Taken together, our results support a model for peptidoglycan acylation in which a tyrosine-containing peptide at the MBOAT's C-terminus shuttles an acyl group from the MBOAT active site to the SGNH active site, where it is transferred to peptidoglycan. This model likely applies to other systems containing MBOAT-SGNH pairs, such as those that -acetylate alginate, cellulose, and secondary cell wall polysaccharides. The use of an acyl-tyrosine intermediate for MBOAT-SGNH acyl transfer is also shared with AT3-SGNH proteins, a second major group of acyltransferases that modify cell envelope polymers.

References
1.
Teufel F, Almagro Armenteros J, Johansen A, Gislason M, Pihl S, Tsirigos K . SignalP 6.0 predicts all five types of signal peptides using protein language models. Nat Biotechnol. 2022; 40(7):1023-1025. PMC: 9287161. DOI: 10.1038/s41587-021-01156-3. View

2.
Neu H, HEPPEL L . The release of enzymes from Escherichia coli by osmotic shock and during the formation of spheroplasts. J Biol Chem. 1965; 240(9):3685-92. View

3.
Cheng C, Kussie P, Pavletich N, Shuman S . Conservation of structure and mechanism between eukaryotic topoisomerase I and site-specific recombinases. Cell. 1998; 92(6):841-50. DOI: 10.1016/s0092-8674(00)81411-7. View

4.
Wood B, Santa Maria Jr J, Matano L, Vickery C, Walker S . A partial reconstitution implicates DltD in catalyzing lipoteichoic acid d-alanylation. J Biol Chem. 2018; 293(46):17985-17996. PMC: 6240853. DOI: 10.1074/jbc.RA118.004561. View

5.
Baker P, Ricer T, Moynihan P, Kitova E, Walvoort M, Little D . P. aeruginosa SGNH hydrolase-like proteins AlgJ and AlgX have similar topology but separate and distinct roles in alginate acetylation. PLoS Pathog. 2014; 10(8):e1004334. PMC: 4148444. DOI: 10.1371/journal.ppat.1004334. View