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The structure of a native l-amino acid oxidase, the major component of the Vipera ammodytes ammodytes venomic, reveals dynamic active site and quaternary structure stabilization by divalent ions. | LitMetric

The structure of a native l-amino acid oxidase, the major component of the Vipera ammodytes ammodytes venomic, reveals dynamic active site and quaternary structure stabilization by divalent ions.

Mol Biosyst

Institute of Biochemistry and Molecular Biology, University of Hamburg, Laboratory of Structural Biology of Infection and Inflammation, c/o DESY, Build. 22a, 22603 Hamburg, Germany.

Published: February 2011

AI Article Synopsis

  • The crystal structure of a flavotoxin from the venom of the Vipera ammodytes snake reveals a complex formed by four molecules bound to oxidized FAD, organized into dimers.
  • The presence of four zinc ions is crucial for maintaining the active structure of the enzyme and is linked to the biological activity of l-amino acid oxidases (LAAOs).
  • Structural comparisons show that substrate binding induces key conformational changes in the active site, affecting the enzyme's catalytic efficiency and suggesting a specific hydrogen bond network that enhances its functionality.

Article Abstract

The crystal structure of the major component of the Vipera ammodytes ammodytes venomic, a flavotoxin, member of the l-amino acid oxidase (LAAO) family, has been determined and refined at 2.6 Å resolution. The asymmetric unit consists of four molecules, each bound to oxidized FAD, representing a dimer of dimers. The binding of four Zn(2+) ions stabilizes the enzymatically active quaternary structure and is considered important for the biological activity of LAAO and other flavoproteins. Each monomer consists of three domains with a cofactor bound between the FAD and substrate binding domains, and a solvent exposed glycosylation site which is considered crucial for the toxicity. Comparison of LAAO structures in the absence and presence of a substrate indicates conformational changes in the dynamic active site. The active site H-bond network involving the triad Lys326-Water-N5 of FAD is formed only upon substrate binding, and results in the increased mobility of the isoalloxazine system. Details of the catalytic transformation of amino acid substrates are discussed.

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Source
http://dx.doi.org/10.1039/c0mb00101eDOI Listing

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