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Published on: February 22, 2018
Chlorotoxin does not target matrix metalloproteinase-2 in glioblastoma
Eli Blaney1, Meron Demeke1, Seraphine Kamayirese1
1Department of Biomedical Sciences, School of Medicine, Creighton University, Omaha, Nebraska, United States of America.
Abstract:
Glioblastoma aggressively invades surrounding tissue by expressing matrix metalloproteinase-2 (MMP-2). Therefore, effective inhibition of MMP-2 is a desirable target for treatment. In some reports, the chlorotoxin (Ctx) polypeptide produced by the scorpion Leiurus quinquestriatus, interacts with human MMP-2 to inhibit tumor invasion without affecting surrounding tissue. We employed three molecular docking methodologies followed by molecular dynamics simulations to find consensus binding and calculate the binding energy of these peptide ligands to MMP-2. In addition to the Ctx itself, four C-terminal fragments were chosen to study their binding to MMP-2. The molecular docking platforms HPEPDOCK, HADDOCK, and AlphaFold2 created peptide - protein poses for each candidate binding to MMP-2. These poses underwent 500 ns molecular dynamics simulations. Peptide binding on MMP-2 and final binding energies were calculated using the Molecular Mechanics Poisson-Boltzmann Surface Area (MMPBSA) method. Configurational entropy and root-mean square deviation analyses showed stable peptide - protein complexes. Ctx and its peptide fragments frequently bound to regions on MMP-2 other than the catalytic site. All docking methods shared consensus on large negative binding energies, indicating favorable interaction between Ctx and its analogs with MMP-2. While Ctx and its fragments bind to MMP-2, there is no consensus on which region of MMP-2 they are bound to or which peptide binds strongest. Neither Ctx nor its fragments inhibited MMP-2 enzymatic activity, however, glioblastoma cellular migration was inhibited. Interactions with the non-catalytic regions of MMP-2 suggest allosteric binding to MMP-2. Inhibition of cellular migration without inhibition of MMP-2 activity warrants further study into the possible targets of Ctx expressed in glioblastoma.
Insights
Chlorotoxin (Ctx) and its fragments bind to glioblastoma's matrix metalloproteinase-2 (MMP-2), inhibiting cellular migration. While not directly inhibiting MMP-2 activity, this interaction suggests a potential allosteric mechanism for glioblastoma treatment.
Area of Science:
- Neuro-oncology
- Molecular biology
- Biochemistry
Background:
- Glioblastoma invasion is driven by matrix metalloproteinase-2 (MMP-2).
- Chlorotoxin (Ctx), a scorpion polypeptide, has shown potential to inhibit tumor invasion by interacting with MMP-2.
- Investigating Ctx fragments could reveal novel therapeutic strategies.
Purpose of the Study:
- To computationally assess the binding of Ctx and its C-terminal fragments to MMP-2.
- To determine the binding affinity and stability of these peptide-protein interactions.
- To explore the potential of Ctx as an anti-glioblastoma agent targeting MMP-2.
Main Methods:
- Utilized three molecular docking platforms (HPEPDOCK, HADDOCK, AlphaFold2) to generate peptide-MMP-2 poses.
- Performed 500 ns molecular dynamics simulations to analyze complex stability.
- Calculated binding energies using the Molecular Mechanics Poisson-Boltzmann Surface Area (MMPBSA) method.
Main Results:
- All docking methods indicated favorable interactions with large negative binding energies between Ctx/fragments and MMP-2.
- Molecular dynamics simulations confirmed stable peptide-protein complexes.
- Ctx and fragments bound to non-catalytic regions of MMP-2, suggesting allosteric interactions.
- Neither Ctx nor its fragments inhibited MMP-2 enzymatic activity, but glioblastoma cellular migration was significantly inhibited.
Conclusions:
- Ctx and its fragments exhibit favorable binding to MMP-2, potentially through allosteric mechanisms.
- Despite not inhibiting MMP-2 activity, Ctx effectively reduces glioblastoma cellular migration.
- Further research is warranted to elucidate the precise targets and mechanisms of Ctx in glioblastoma treatment.
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