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Synthesis of Information-bearing Peptoids and their Sequence-directed Dynamic Covalent Self-assembly
Published on: February 6, 2020
Covalent vs. Non-Covalent Inhibition: Tackling Drug Resistance in EGFR - A Thorough Dynamic Perspective
Farideh Badichi Akher1, Abdolkarim Farrokhzadeh1, Mahmoud E S Soliman1
1Bio-computation and Drug Design Laboratory, School of Health Sciences, University of KwaZulu-Natal, Westville Campus, Durban, 4001, South Africa.
Abstract:
A persistent challenge in the treatment of non-small cell lung cancer (NSCLC) with EGFR is the emergence of drug-resistant caused by somatic mutations. The EGFR L858R/T790 M double mutant (EGFRDM ) was found to be the most alarming variant. Despite the development of a wide range of inhibitors, none of them could inhibit EGFRDM effectively. Recently, 11h and 45a, have been found to be potent inhibitors against EGFRDM through two distinctive mechanisms, non-covalent and covalent binding, respectively. However, the structural and dynamic implications of the two modes of inhibitions remain unexplored. Herein, two molecular dynamics simulation protocols, coupled with free-energy calculations, were applied to gain insight into the atomistic nature of each binding mode. The comparative analysis confirmed that there is a significant difference in the binding free energy between 11h and 45a (ΔΔGbind =-21.17 kcal/mol). The main binding force that governs the binding of both inhibitors is vdW, with a higher contribution for 45a. Two residues ARG841 and THR854 were found to have curtailed role in the binding of 45a to EGFRDM by stabilizing its flexible alcohol chain. The 45a binding to EGFRDM induces structural rearrangement in the active site to allow easier accessibility of 45a to target residue CYS797. The findings of this work can substantially shed light on new strategies for developing novel classes of covalent and non-covalent inhibitors with increased specificity and potency.
Insights
Two novel inhibitors, 11h and 45a, target drug-resistant EGFR double mutants in non-small cell lung cancer (NSCLC). Molecular dynamics simulations reveal distinct binding mechanisms and free energy differences, guiding future drug development strategies.
Area of Science:
- Molecular Biology
- Computational Chemistry
- Pharmacology
Background:
- Non-small cell lung cancer (NSCLC) treatment faces challenges from drug-resistant EGFR mutations, particularly the L858R/T790M double mutant (EGFRDM).
- Existing inhibitors show limited efficacy against EGFRDM, necessitating the development of novel therapeutic agents.
Purpose of the Study:
- To investigate the structural and dynamic implications of non-covalent (11h) and covalent (45a) binding modes of inhibitors against EGFRDM.
- To elucidate the atomistic details governing the differential inhibition of EGFRDM by 11h and 45a.
Main Methods:
- Utilized molecular dynamics (MD) simulation protocols coupled with free-energy calculations.
- Performed comparative analysis of binding free energies and identified key interactions between inhibitors and EGFRDM.
Main Results:
- A significant difference in binding free energy was observed between 11h and 45a (ΔΔGbind = -21.17 kcal/mol).
- Van der Waals forces were the primary binding force for both inhibitors, with a greater contribution from 45a.
- Residues ARG841 and THR854 play a role in stabilizing 45a's interaction, and 45a binding induces active site rearrangements for CYS797 targeting.
Conclusions:
- The study provides atomistic insights into the distinct binding mechanisms of covalent and non-covalent inhibitors against EGFRDM.
- Findings can inform the design of next-generation covalent and non-covalent inhibitors with enhanced specificity and potency for NSCLC treatment.
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