Related Experiment Video
Updated: Aug 25, 2026

Inhibition of Aspergillus flavus Growth and Aflatoxin Production in Transgenic Maize Expressing the α-amylase Inhibitor from Lablab purpureus L.
Published on: February 15, 2019
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.
Abstract:
Maize polyamine oxidase (MPAO), the only member of the polyamine oxidase (PAO) family whose three-dimensional structure is known, is characterized by a 30 A long U-shaped catalytic tunnel located between the substrate binding domain and the FAD. To shed light on the MPAO ligand binding mode, we studied the inhibition properties of linear diamines, agmatine, prenylagmatine (G3), G3 analogues, and guazatine, and analyzed the structural determinants of their biological activity. Linear diamines competitively inhibited MPAO, with the inhibitory activity increasing as a function of the number of methylene groups. With regard to the guanidino competitive inhibitors, including agmatine, G3, and G3 analogues, the presence of a hydrophobic substituent constitutes the principal factor influencing MPAO inhibition, as the addition of a hydrophobic substituent to the guanidino group of both G3 and G3 analogues greatly increases the inhibitory activity. Moreover, results obtained by a molecular modeling procedure indicated that in their preferred orientation, G3 analogues point the ammonium group toward the narrow entrance of the tunnel, while the terminal hydrophobic group is located within the large entrance. The high binding affinity for MPAO exhibited by G3 and G3 analogues bearing a prenyl group as a substituent on the guanidino moiety is in agreement with the observation that the prenyl group binds in a well-defined hydrophobic pocket, mainly formed by aromatic residues. Finally, docking simulations performed with the charged and uncharged forms of MPAO inhibitors indicate that the stereoelectronic properties of the MPAO active site are consistent with the binding of inhibitors in the protonated form.
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.
Related Concept Videos
Enzyme Inhibition
Enzymes
Enzyme deficiencies can often translate into life-threatening diseases. For example, a genetic abnormality resulting in the deficiency of the enzyme G6PD...
Allosteric Proteins-ATCase
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis pathway,...
Ligand Binding and Linkage
Indirect-Acting Cholinergic Agonists: Mechanism of Action
Reversible inhibitors like edrophonium bind to a specific part of the enzyme called the anionic catalytic site. They form noncovalent bonds, which means they are not strongly attached to the enzyme. This creates a temporary and less stable enzyme–inhibitor complex, leading to...
Feedback Inhibition
