Structural analysis of flavinylation in vanillyl-alcohol oxidase

  • MW Fraaije*
  • , RHH van den Heuvel
  • , WJH van Berkel
  • , A Mattevi
  • , Robert H.H. van den Heuvel
  • , Willem J.H. van Berkel
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

68 Citations (Scopus)
356 Downloads (Pure)

Abstract

Vanillyl-alcohol oxidase (VAO) is member of a newly recognized flavoprotein family of structurally related oxidoreductases. The enzyme contains a covalently linked FAD cofactor. To study the mechanism of flavinylation we have created a design point mutation (His-61 --> Thr). In the mutant enzyme the covalent His-C8 alpha -flavin linkage is not formed, while the enzyme is still able to bind FAD and perform catalysis. The H61T mutant displays a similar affinity for FAD and ADP (K-d = 1.8 and 2.1 muM, respectively) but does not interact with FMN. H61T is about 10-fold less active with 4-(methoxymethyl)phenol) (k(cat) = 0.24 s(-1), K-m = 40 muM) than the wild-type enzyme. The crystal structures of both the hole and apo form of H61T are highly similar to the structure of wild-type VAO, indicating that binding of FAD to the apoprotein does not require major structural rearrangements. These results show that covalent flavinylation is an autocatalytical process in which His-BI plays a crucial role by activating His-422. Furthermore, our studies clearly demonstrate that in VAO, the FAD binds via a typical lock-and-key approach to a preorganized binding site.

Original languageEnglish
Pages (from-to)38654-38658
Number of pages5
JournalThe Journal of Biological Chemistry
Volume275
Issue number49
DOIs
Publication statusPublished - 8-Dec-2000

Keywords

  • P-HYDROXYBENZOATE HYDROXYLASE
  • L-ASPARTATE OXIDASE
  • OXIDOREDUCTASE FAMILY
  • CRYSTAL-STRUCTURES
  • PROTEIN MODELS
  • ACTIVE-SITE
  • BINDING
  • FLAVOPROTEIN
  • FAD
  • REFINEMENT

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