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Deep analysis of N-cadherin/ADH-1 interaction: a computational survey
Mahboobeh Eslami1, Navid Nezafat1, Sahar Khajeh2
1a Pharmaceutical Sciences Research Center , Shiraz University of Medical Sciences , Shiraz , Iran.
Abstract:
Due to the considerable role of N-cadherin in cancer metastasis, tumor growth, and progression, inhibition of this protein has been highly regarded in recent years. Although ADH-1 has been known as an appropriate inhibitor of N-cadherin in clinical trials, its chemical nature and binding mode with N-cadherin have not been precisely specified yet. Accordingly, in this study, quantum mechanics calculations were used to investigate the chemical nature of ADH-1. These calculations clarify the molecular properties of ADH-1 and determine its reactive sites. Based on the results, the oxygen atoms are suitable for electrophilic reactivity, while the hydrogen atoms that are connected to nitrogen atoms are the favorite sites for nucleophilic reactivity. The higher electronegativity of the oxygen atoms makes them the most reactive portions in this molecule. Molecular docking and molecular dynamics (MD) simulation have also been applied to specify the binding mode of ADH-1 with N-cadherin and determine the important residues of N-cadherin involving in the interaction with ADH-1. Moreover, the verified model by MD simulation has been studied to extract the free energy value and find driving forces. These calculations and molecular electrostatic potential map of ADH-1 indicated that hydrophobic and electrostatic interactions are almost equally involved in the implantation of ADH-1 in the N-cadherin binding site. The presented results not only enable a closer examination of N-cadherin in complex with ADH-1 molecule, but also are very beneficial in designing new inhibitors for N-cadherin and can help to save time and cost in this field.
Insights
This study investigates ADH-1, an N-cadherin inhibitor, using quantum mechanics and molecular simulations. Findings clarify ADH-1's chemical properties and binding interactions, aiding future cancer drug design.
Area of Science:
- Computational chemistry
- Molecular biology
- Drug discovery
Background:
- N-cadherin plays a critical role in cancer metastasis and progression.
- Inhibiting N-cadherin is a promising therapeutic strategy.
- ADH-1 is a known N-cadherin inhibitor, but its properties and binding mode require detailed investigation.
Purpose of the Study:
- To elucidate the chemical nature and reactive sites of ADH-1.
- To determine the binding mode of ADH-1 with N-cadherin.
- To identify key N-cadherin residues involved in ADH-1 interaction and the driving forces of binding.
Main Methods:
- Quantum mechanics calculations to analyze ADH-1's molecular properties and reactivity.
- Molecular docking and molecular dynamics (MD) simulations to study ADH-1/N-cadherin interactions.
- Free energy calculations and molecular electrostatic potential (MEP) mapping.
Main Results:
- Quantum mechanics calculations identified oxygen atoms as electrophilic sites and N-H hydrogen atoms as nucleophilic sites, with oxygen being the most reactive.
- Molecular docking and MD simulations revealed the binding mode of ADH-1 with N-cadherin, highlighting specific interacting residues.
- Analysis indicated that both hydrophobic and electrostatic interactions contribute almost equally to ADH-1 binding within the N-cadherin active site.
Conclusions:
- The study provides a detailed understanding of ADH-1's chemical characteristics and its interaction mechanism with N-cadherin.
- These findings are crucial for the rational design of novel and more effective N-cadherin inhibitors.
- The research offers a cost- and time-efficient approach for developing new anti-cancer therapeutics targeting N-cadherin.
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