1W05 image
Deposition Date 2004-06-01
Release Date 2005-05-04
Last Version Date 2024-05-08
Entry Detail
PDB ID:
1W05
Keywords:
Title:
Isopenicillin N Synthase Aminoadipoyl-Cysteinyl-Alanine-Fe Complex
Biological Source:
Method Details:
Experimental Method:
Resolution:
2.46 Å
R-Value Free:
0.21
R-Value Work:
0.16
R-Value Observed:
0.16
Space Group:
P 31 2 1
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:ISOPENICILLIN N SYNTHETASE
Gene (Uniprot):ipnA
Chain IDs:A
Chain Length:331
Number of Molecules:1
Biological Source:Emericella nidulans (strain FGSC A4 / ATCC 38163 / CBS 112.46 / NRRL 194 / M139)
Primary Citation
Structural Studies on the Reaction of Isopenicillin N Synthase with the Truncated Substrate Analogues Delta-(L-Alpha-Aminoadipoyl)-L-Cysteinyl-Glycine and Delta-(L-Alpha-Aminoadipoyl)-L-Cysteinyl-D- Alanine
Biochemistry 44 6619 ? (2005)
PMID: 15850395 DOI: 10.1021/BI047478Q

Abstact

Isopenicillin N synthase (IPNS), a non-heme iron(II)-dependent oxidase, catalyzes conversion of the tripeptide delta-(l-alpha-aminoadipoyl)-l-cysteinyl-d-valine (ACV) to bicyclic isopenicillin N (IPN), concomitant with the reduction of dioxygen to two molecules of water. Incubation of the "truncated"substrate analogues delta-(l-alpha-aminoadipoyl)-l-cysteinyl-glycine (ACG) and delta-(l-alpha-aminoadipoyl)-l-cysteinyl-d-alanine (ACA) with IPNS has previously been shown to afford acyclic products, in which the substrate cysteinyl residue has undergone a two-electron oxidation. We report X-ray crystal structures for the anaerobic IPNS/Fe(II)/ACG and IPNS/Fe(II)/ACA complexes, both in the absence and presence of the dioxygen analogue nitric oxide. The overall protein structures are very similar to those of the corresponding IPNS/Fe(II)/ACV complexes; however, significant differences are apparent in the vicinity of the active site iron. The structure of the IPNS/Fe(II)/ACG complex reveals that the C-terminal carboxylate of this substrate is oriented toward the active site iron atom, apparently hydrogen-bonded to an additional water ligand at the metal; this is a different binding mode to that observed in the IPNS/Fe(II)/ACV complex. ACA binds to the metal in a manner that is intermediate between those observed for ACV and ACG. The addition of NO to these complexes initiates conformational changes such that both the IPNS/Fe(II)/ACG/NO and IPNS/Fe(II)/ACA/NO structures closely resemble the IPNS/Fe(II)/ACV/NO complex. These results further demonstrate the feasibility of metal-centered rearrangements in catalysis by non-heme iron enzymes and provide insight into the delicate balance between hydrophilic-hydrophobic interactions and steric effects in the IPNS active site.

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Primary Citation of related structures