Structure of isopenicillinN synthase complexed with substrate and the mechanism ofpenicillin formation (original) (raw)
- Letter
- Published: 19 June 1997
- Ian J. Clifton1,
- Charles M. H. Hensgens1,
- Norio Shibata1,
- Christopher J. Schofield1,
- Janos Hajdu2 &
- …
- Jack E. Baldwin3
Nature volume 387, pages 827–830 (1997)Cite this article
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Abstract
The biosynthesis of penicillin and cephalosporin antibiotics in microorganisms requires the formation of the bicyclic nucleus of penicillin1. Isopenicillin N synthase (IPNS), a non-haem iron-dependent oxidase, catalyses the reaction of a tripeptide, δ-(L-α-aminoadipoyl)- L-cysteinyl-D-valine (ACV), and dioxygen to form isopenicillin N and two water molecules2. Mechanistic studies suggest the reaction is initiated by ligation of the substrate thiolate to the iron centre, and proceeds through an enzyme-bound monocyclic intermediate3,4 (Fig. 1). Here we report the crystal structure of IPNS complexed to ferrous iron and ACV, determined to 1.3 å resolution. Based on the structure, we propose a mechanism for penicillin formation that involves ligation of ACV to the iron centre, creating a vacant iron coordination site into which dioxygen can bind. Subsequently, iron-dioxygen and iron-oxo species remove the requisite hydrogens from ACV without the direct assistance of protein residues (Fig. 2). The crystal structure of the complex with the dioxygen analogue, NO and ACV bound to the active-site iron supports this hypothesis.
AA, _L_-δ-(α-aminoadipoyl).
sp;IPNS complex.
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Acknowledgements
We thank K. Harlos, E. Garman, R. Bryan, I. Andersson, R. M. Adlington, R. C. Wilmouth, V. Fülöp, J. P. N. Pitt, A. Howe, S. Lee, J. W. Keeping, B. Rasmussen and A. Thompson for help and discussions. Financial support was provided by the MRC, BBSRC, EPSRC and Zeneca through a DTI link scheme.
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Authors and Affiliations
- *The Dyson Perrins Laboratory and the Oxford Centre of Molecular Sciences, University of Oxford, South Parks Road, OX1 3QY, Oxford, UK
Peter L. Roach, Ian J. Clifton, Charles M. H. Hensgens, Norio Shibata & Christopher J. Schofield - †Department of Biochemistry, Biomedical Centre, Uppsala University, Box 576, S-75123, Uppsala, Sweden
Janos Hajdu - Correspondence and requests for materials should be addressed to J.E.B. or J.H.,
Jack E. Baldwin
Author notes
The crystallographic coordinates have been deposited in the Brookhaven Protein Data Bank (accession nos 1IPS, 2IPS and 3IPS) and will be released one year after publication.
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Roach, P., Clifton, I., Hensgens, C. et al. Structure of isopenicillin_N_ synthase complexed with substrate and the mechanism ofpenicillin formation.Nature 387, 827–830 (1997). https://doi.org/10.1038/42990
- Received: 29 January 1997
- Accepted: 15 April 1997
- Issue Date: 19 June 1997
- DOI: https://doi.org/10.1038/42990