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Updated: Aug 8, 2026

Deciphering the Molecular Mechanism and Function of Pore-Forming Toxins Using Leishmania major
Published on: October 28, 2022
Molecular dynamics simulation of Leishmania major surface metalloprotease GP63 (leishmanolysin)
Gianluca Bianchini1, Alessio Bocedi, Paolo Ascenzi
1Dipartimento di Chimica, Ingegneria Chimica e Materiali, Universitá L'Aquila, L'Aquila, Italy.
Abstract:
One of the molecular factors contributing to Leishmania sp. virulence and pathogenesis is the major surface metalloprotease GP63, alternatively called leishmanolysin, MSP, and PSP (EC 3.4.24.36). Here, the molecular dynamics simulation of Leishmania major GP63 in water at pH 7 is reported. Upon solvation, GP63 undergoes a sharp structural relaxation with respect to the crystal structure. The fluctuation pattern occurs essentially in solvent-exposed nonstructured regions. By contrast, the active site turns out to be rigid. Essential dynamics and dynamic-domain analyses, both carried out on the equilibrated portion of GP63, show that the fingerprint fluctuations of GP63 are practically characterized by the motion of a large part of the N-terminal domain. These results appear to be in line with substrate recognition and (pro)enzyme activation played by the N-terminal domain of GP63. A systematic analysis among a series of 10 homologs of GP63 also shows that the residues involved in the interdomain bending result highly conserved. This finding also suggests possible relationship between the maintainance of proteolytic activity and the similarity of the dynamical properties of the related enzymes.
Insights
The major surface metalloprotease GP63 from Leishmania major shows significant structural relaxation upon solvation, with its active site remaining rigid. The N-terminal domain drives key fluctuations, suggesting its role in substrate recognition and enzyme activation.
Area of Science:
- Parasitology
- Structural Biology
- Computational Biology
Background:
- Leishmania sp. virulence is influenced by the major surface metalloprotease GP63 (leishmanolysin).
- Understanding GP63's structure-dynamics is crucial for comprehending Leishmania pathogenesis.
Purpose of the Study:
- To investigate the molecular dynamics of Leishmania major GP63 in aqueous solution at pH 7.
- To elucidate the relationship between GP63's structural dynamics, active site, and function.
Main Methods:
- Molecular dynamics simulation of Leishmania major GP63.
- Solvation and analysis of structural relaxation.
- Essential dynamics and dynamic-domain analyses.
- Comparative analysis of GP63 homologs.
Main Results:
- GP63 exhibits significant structural relaxation upon solvation, primarily in solvent-exposed regions.
- The active site of GP63 remains rigid during simulations.
- N-terminal domain motion dominates GP63's fluctuation patterns.
- Conserved residues involved in interdomain bending suggest a link to proteolytic activity.
Conclusions:
- The N-terminal domain's dynamics are critical for GP63's substrate recognition and activation.
- Conserved dynamics among GP63 homologs may be essential for maintaining proteolytic function.
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