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Biomolecular interactions between the antibacterial ceftolozane and the human inflammatory disease target ADAM17: a
Ahsan Anjoom Sunil1, Deepthi Jose2, Sai Kumar Karri1
1School of Biotechnology, National Institute of Technology Calicut, Calicut, India.
Abstract:
Inhibition of a disintegrin and metalloproteinase-17 (ADAM17), a metzincin, is proposed as a novel therapeutic strategy to suppress overproduction of the proinflammatory cytokine TNF-α in rheumatoid arthritis and inflammatory bowel disease. Existing ADAM17 inhibitors generate toxic metabolites in-vivo or haven't progressed in clinical trials. Previous studies suggest that ligands which bind to ADAM17 active site by interacting with the Zn ion and L-shaped hydrophobic S1'- and S3'-pockets and forming favorable hydrogen bonds could act as potential ADAM17 inhibitors. Here, we investigated whether the FDA-approved anti-bacterial drug ceftolozane, a cephalosporin containing aromatic groups and carboxyl groups as probable zinc binding groups (ZBGs), forms non-covalent interactions resulting in its binding in the active site of ADAM17. In this study, the density functional theory (DFT), molecular docking and molecular dynamics calculations with the catalytic chain of ADAM17 show that carboxyl group of ceftolozane acts as moderate ZBG, and its extended geometry forms hydrogen bonds and hydrophobic interactions resulting in a binding affinity comparable to the co-crystallized known ADAM17 inhibitor. The favorable binding interactions identified here suggest the potential of ceftolozane to modulate ADAM17 activity in inflammatory diseases. ADAM17 cleaves and releases epidermal growth factor (EGF) ligands from the cell surface. The shed EGF ligands then bind to the EGF receptors to drive embryonic development. Therefore, our findings also suggest that use of ceftolozane during pregnancy may inhibit ADAM17-mediated shedding of EGF and thus increase the risk of birth defects in humans.Communicated by Ramaswamy H. Sarma.
Insights
The antibacterial drug ceftolozane may inhibit ADAM17, a target for inflammatory diseases. However, this action could increase the risk of birth defects by interfering with EGF signaling during pregnancy.
Area of Science:
- Biochemistry
- Pharmacology
- Medicinal Chemistry
Background:
- ADAM17 inhibition is a therapeutic strategy for inflammatory diseases like rheumatoid arthritis and inflammatory bowel disease.
- Current ADAM17 inhibitors face challenges with toxicity and clinical progression.
- Ligand binding to ADAM17's active site, involving Zn ions and hydrophobic pockets, is key for inhibition.
Purpose of the Study:
- To investigate ceftolozane, an FDA-approved antibacterial drug, as a potential inhibitor of ADAM17.
- To explore the binding interactions of ceftolozane within the ADAM17 active site.
Main Methods:
- Density Functional Theory (DFT) calculations.
- Molecular docking simulations.
- Molecular dynamics simulations using the catalytic chain of ADAM17.
Main Results:
- Ceftolozane's carboxyl group acts as a moderate zinc-binding group.
- Its structure forms hydrogen bonds and hydrophobic interactions within the ADAM17 active site.
- Ceftolozane exhibits binding affinity comparable to known ADAM17 inhibitors.
Conclusions:
- Ceftolozane shows potential for modulating ADAM17 activity in inflammatory conditions.
- ADAM17 mediates EGF ligand shedding, crucial for embryonic development.
- Ceftolozane use in pregnancy may pose a risk of birth defects due to inhibited EGF signaling.
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