12KH image
Deposition Date 2026-04-09
Release Date 2026-04-29
Last Version Date 2026-07-08
Entry Detail
PDB ID:
12KH
Title:
The Condensation Domain from Coprococcus Eutactus, OaaC
Biological Source:
Source Organism(s):
Expression System(s):
Method Details:
Experimental Method:
Resolution:
2.15 Å
R-Value Free:
0.23
R-Value Work:
0.20
R-Value Observed:
0.20
Space Group:
H 3
Macromolecular Entities
Structural Superimposition Protein Blast
Polymer Type:polypeptide(L)
Molecule:Condensation Domain Protein
Chain IDs:A, B
Chain Length:465
Number of Molecules:2
Biological Source:Coprococcus eutactus ATCC 27759
Primary Citation
Structure of a stand-alone homodimeric nonribosomal peptide synthetase condensation domain reveals occlusion of the canonical carrier-protein interface.
J.Biol.Chem. 302 113208 113208 (2026)
PMID: 42208893 DOI: 10.1016/j.jbc.2026.113208

Abstact

Fatty acid amides (FAAs) produced by gut-resident bacteria act as potent modulators of host G-protein coupled receptor signaling, yet the enzymatic mechanisms underlying their biosynthesis remain poorly understood. In many bacteria from the gut microbiome, including Coprococcus eutactus, FAA production is mediated by a nonribosomal peptide synthetase (NRPS)-like pathway that includes OaaC, a free-standing condensation domain that catalyzes amide bond formation between acyl carrier protein (ACP) tethered fatty acids and small-molecule amine acceptors. Here, we combine structural, biophysical, biochemical, and evolutionary analyses to interrogate the molecular basis of OaaC function. Solution scattering and X-ray crystallography reveal that OaaC adopts an atypical homodimeric architecture that occludes the canonical ACP-binding surface and donor access pathways. Mass photometry demonstrates that this homodimer is stable in the absence of substrates and is insensitive to free fatty acids, free amines, and apo-ACP. In contrast, holo or acyl-loaded OaaACP selectively destabilizes the homodimer forming the OaaC-OaaACP complex population. LC-MS reconstitution assays confirm that OaaC catalyzes fatty acid amide formation in vitro and can utilize acyl donors spanning multiple chain lengths and saturation states. Phylogenetic and sequence analyses place FAA-associated condensation domains in a distinct clade most closely related to starter condensation domains and reveal a conserved noncanonical active site motif that differentiates them from PCP-dependent NRPS condensation domains. Together, these findings support a model in which OaaC activity is regulated through substrate-dependent modulation of oligomeric state, providing a model framework for understanding FAA biosynthesis in gut microbes and expanding the known functional diversity of NRPS condensation domains.

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