Molecular basis for the binding of competitive inhibitors of maize polyamine oxidase

Alessandra Cona1, Fabrizio Manetti, Rosalida Leone

  • 1Dipartimento di Biologia, Università Roma Tre, Viale Guglielmo Marconi 446, I-00146 Roma, Italy.

Biochemistry
|March 24, 2004
PubMed

Insights

Maize polyamine oxidase (MPAO) inhibition is enhanced by hydrophobic substituents on guanidino compounds. These findings reveal key interactions within MPAO

Area of Science:

  • Biochemistry
  • Enzymology
  • Structural Biology

Background:

  • Maize polyamine oxidase (MPAO) possesses a unique U-shaped catalytic tunnel.
  • Understanding MPAO's ligand binding is crucial for enzyme mechanism elucidation.

Purpose of the Study:

  • To investigate the inhibition properties of various compounds on MPAO.
  • To analyze the structural determinants governing MPAO inhibition by linear diamines and guanidino inhibitors.
  • To elucidate the ligand binding mode within the MPAO catalytic tunnel.

Main Methods:

  • Enzyme inhibition assays using linear diamines, agmatine, prenylagmatine (G3), G3 analogues, and guazatine.
  • Molecular modeling to analyze inhibitor orientation and interactions.
  • Docking simulations to assess inhibitor binding modes.

Main Results:

  • Linear diamines competitively inhibited MPAO, with activity increasing with chain length.
  • Hydrophobic substituents significantly enhanced the inhibitory activity of guanidino compounds (agmatine, G3, G3 analogues).
  • Molecular modeling and docking simulations indicated specific binding interactions, including hydrophobic pockets and protonated inhibitor forms.

Conclusions:

  • Hydrophobic interactions are critical for high-affinity binding of G3 analogues to MPAO.
  • The prenyl group of G3 analogues binds to a hydrophobic pocket formed by aromatic residues.
  • MPAO inhibitors likely bind in their protonated form, consistent with active site stereoelectronic properties.

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