In silico approach to probe the binding affinity between OMVs harboring the ZEGFR affibody and the EGF receptor

Zahra Sepahdar1, Reza Saghiri2, Mehran Miroliaei3

  • 1Department of Cell and Molecular Biology & Microbiology, Faculty of Biological Science and Technology, University of Isfahan, Isfahan, Iran.

Insights

Researchers engineered a novel nanocarrier using cytolysin A and an EGFR-targeting affibody for cancer therapy. The addition of a GALA peptide enhanced nanocarrier stability and EGFR binding, paving the way for advanced drug delivery systems.

Area of Science:

  • Biotechnology and Nanomedicine
  • Molecular Biology
  • Computational Chemistry

Background:

  • Developing targeted nanocarriers for cancer therapy is crucial.
  • Epidermal Growth Factor Receptors (EGFRs) are key targets in many cancers.
  • Affibodies offer specific targeting capabilities for therapeutic agents.

Purpose of the Study:

  • To design and computationally evaluate a novel nanocarrier for EGFR-targeted cancer therapy.
  • To investigate the surface presentation and stability of engineered nanocarriers.
  • To assess the role of a fusogenic peptide in nanocarrier function.

Main Methods:

  • Molecular docking and molecular dynamic simulations were employed.
  • Engineered constructs included Cytolysin A (ClyA) fused with an EGFR-targeting affibody (ZEGFR:1907).
  • A fusogenic peptide (GALA) was incorporated into one construct for enhanced endosomal escape.

Main Results:

  • The ClyA-affiEGFR-GALA construct demonstrated higher stability and a more equilibrated interaction with EGFR compared to ClyA-affiEGFR.
  • Molecular dynamics simulations indicated a well-folded structure for ClyA-affiEGFR-GALA.
  • Hydrogen bond analysis confirmed the enhanced stability of the ClyA-affiEGFR-GALA/EGFR complex.

Conclusions:

  • The engineered ClyA-affiEGFR-GALA construct shows promise as a stable nanocarrier for EGFR-targeted drug delivery.
  • Computational data supports the potential of this nanocarrier for biological evaluation.
  • This study provides a foundation for developing novel cancer nanotherapeutics.