Structural investigations of T854A mutation in EGFR and identification of novel inhibitors using structure activity

BMC Genomics
|June 5, 2015
PubMed
Abstract

Insights

A mutation in the epidermal growth factor receptor (EGFR) tyrosine kinase (TK) domain increases protein flexibility, leading to drug resistance. Novel compounds show high inhibitory activity against both wild-type and mutant EGFR TK.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Epidermal growth factor receptor (EGFR) is crucial in cancer development and progression.
  • EGFR tyrosine kinase (TK) domain is a key target for cancer therapy, with inhibitors like erlotinib used clinically.
  • Mutations in the EGFR TK domain can lead to altered responses to TK inhibitors (TKIs).

Purpose of the Study:

  • To investigate structural changes in wild-type versus T854A mutant EGFR TK domain using molecular dynamics simulations and PCA.
  • To develop a robust 3D-QSAR model for predicting EGFR TK inhibitory activity.
  • To identify novel potential inhibitors for both wild-type and mutant EGFR TK.

Main Methods:

  • Molecular dynamics simulations and Principal Component Analysis (PCA) were performed on wild-type and T854A mutant EGFR TK structures.
  • A 3D-QSAR model was developed using 38 thiazolyl-pyrazoline compounds.
  • The QSAR model was applied to predict the inhibitory activity of natural compounds from the ZINC library.

Main Results:

  • Molecular dynamics simulations showed the wild-type structure was stable for 26 ns and the mutant for 24 ns.
  • PCA revealed increased flexibility in the T854A mutant EGFR TK structure compared to the wild-type.
  • A robust 3D-QSAR model (r2=0.9751, q2=0.9491, pred_r2=0.9525) was established and used for compound screening.

Conclusions:

  • The T854A mutation induces structural instability and increased flexibility in the EGFR TK domain, contributing to erlotinib resistance.
  • Two novel compounds with high predicted inhibitory activity against both wild-type and mutant EGFR TK were identified.
  • The findings provide insights into EGFR TKI resistance mechanisms and suggest new therapeutic strategies.