Computational structural dynamics and immunoinformatic analysis of EIEC IpaH4.5 targeting immunoprophylaxis design

Pinkan Sadhukhan1, Nibedita Mahata2

  • 1Department of Biotechnology, National Institute of Technology Durgapur, Durgapur, 713209, India.

Molecular Diversity
|July 16, 2026
PubMed

Insights

A novel nasal vaccine candidate targeting bacillary dysentery was identified using the EIEC IpaH4.5 protein. This peptide-based vaccine shows potential for broad population coverage and activates both humoral and cellular immunity.

Area of Science:

  • Immunology and Vaccinology
  • Microbial Pathogenesis
  • Computational Biology

Background:

  • Bacillary dysentery remains a significant global health issue, particularly affecting infants in developing countries.
  • The absence of a licensed vaccine and the rise of antimicrobial resistance necessitate alternative immunoprophylactic strategies.
  • The Entero-invasive Escherichia coli (EIEC) IpaH4.5 protein is a virulence-associated factor conserved across Shigella species.

Purpose of the Study:

  • To identify and characterize a nasal subunit vaccine candidate against bacillary dysentery.
  • To investigate the immunogenic potential of a specific peptide derived from the EIEC IpaH4.5 protein.

Main Methods:

  • Selection of the EIEC IpaH4.5 protein as an antigenic source and identification of a 29-mer protective antigenic peptide (PAP).
  • In silico analysis including epitope mapping, HLA-binding prediction, T-cell epitope screening (IFN-γ, IL-4, IL-10 induction), and population coverage assessment.
  • Structural modeling (ab-initio and homology modeling), molecular dynamics simulations, and binding energy calculations (MM/PBSA, MM/GBSA) of the IpaH4.5-TLR4 complex.
  • In silico cloning for theoretical expression feasibility.

Main Results:

  • A 29-mer PAP containing B-cell, CTL, and HTL epitopes was identified within the EIEC IpaH4.5 N-terminal region.
  • Screened T-cell epitopes exhibited strong HLA-binding potential and induced key cytokine responses (IFN-γ, IL-4, IL-10), with high global population coverage (99.68%).
  • Molecular dynamics simulations confirmed a stable and energetically favorable interaction between IpaH4.5 and human Toll-like receptor 4 (TLR4).
  • In silico analysis predicted activation of both humoral and cellular immunity, and theoretical expression feasibility.

Conclusions:

  • The identified PAP from EIEC IpaH4.5 shows significant promise as a nasal subunit vaccine candidate against bacillary dysentery.
  • The in silico findings suggest broad applicability due to high population coverage and robust immune activation.
  • Further experimental validation is crucial to confirm the protective immunogenicity of this vaccine candidate.

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