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Updated: Nov 26, 2025

X-Ray Crystallography to Study the Oligomeric State Transition of the Thermotoga maritima M42 Aminopeptidase TmPep1050
Published on: May 13, 2020
Active site metals mediate an oligomeric equilibrium in Plasmodium M17 aminopeptidases
Tess R Malcolm1, Matthew J Belousoff1, Hariprasad Venugopal2
1Infection & Immunity Program, Monash Biomedicine Discovery Institute and Department of Microbiology, Monash University, Clayton, Victoria, Australia.
Abstract:
M17 leucyl aminopeptidases are metal-dependent exopeptidases that rely on oligomerization to diversify their functional roles. The M17 aminopeptidases from Plasmodium falciparum (PfA-M17) and Plasmodium vivax (Pv-M17) function as catalytically active hexamers to generate free amino acids from human hemoglobin and are drug targets for the design of novel antimalarial agents. However, the molecular basis for oligomeric assembly is not fully understood. In this study, we found that the active site metal ions essential for catalytic activity have a secondary structural role mediating the formation of active hexamers. We found that PfA-M17 and Pv-M17 exist in a metal-dependent dynamic equilibrium between active hexameric species and smaller inactive species that can be controlled by manipulating the identity and concentration of metals available. Mutation of residues involved in metal ion binding impaired catalytic activity and the formation of active hexamers. Structural resolution of Pv-M17 by cryoelectron microscopy and X-ray crystallography together with solution studies revealed that PfA-M17 and Pv-M17 bind metal ions and substrates in a conserved fashion, although Pv-M17 forms the active hexamer more readily and processes substrates faster than PfA-M17. On the basis of these studies, we propose a dynamic equilibrium between monomer ↔ dimer ↔ tetramer ↔ hexamer, which becomes directional toward the large oligomeric states with the addition of metal ions. This sophisticated metal-dependent dynamic equilibrium may apply to other M17 aminopeptidases and underpin the moonlighting capabilities of this enzyme family.
Insights
Metal ions are crucial for M17 aminopeptidases, like those from Plasmodium, to form active hexamers. This metal-dependent assembly controls enzyme function and may explain their diverse roles.
Area of Science:
- Biochemistry
- Structural Biology
- Parasitology
Background:
- M17 leucyl aminopeptidases are metal-dependent exopeptidases.
- Oligomerization diversifies their functional roles.
- Plasmodium falciparum (PfA-M17) and Plasmodium vivax (Pv-M17) aminopeptidases are drug targets for malaria treatment.
Purpose of the Study:
- To elucidate the molecular basis of M17 aminopeptidase oligomeric assembly.
- To understand the role of active site metal ions in hexamer formation.
- To investigate the dynamic equilibrium of M17 aminopeptidase species.
Main Methods:
- Cryo-electron microscopy and X-ray crystallography for structural resolution of Pv-M17.
- Solution studies to analyze enzyme dynamics.
- Site-directed mutagenesis to assess the role of metal-binding residues.
Main Results:
- Active site metal ions are essential for forming active hexamers in PfA-M17 and Pv-M17.
- These enzymes exist in a metal-dependent dynamic equilibrium between hexameric and smaller inactive forms.
- Metal ion concentration and identity modulate this equilibrium.
- Mutations in metal-binding sites impair activity and hexamer formation.
- Pv-M17 forms hexamers more readily and processes substrates faster than PfA-M17.
Conclusions:
- A dynamic equilibrium between monomer, dimer, tetramer, and hexamer states exists for M17 aminopeptidases.
- Metal ions drive this equilibrium towards larger oligomeric states.
- This metal-dependent mechanism may explain the moonlighting functions of M17 aminopeptidases and apply to other members of this enzyme family.
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