An In Silico Multi-epitopes Vaccine Ensemble and Characterization Against Nosocomial Proteus penneri

Asad Ullah1,2, Bushra Rehman3, Saifullah Khan3

  • 1Department of Health and Biological Sciences, Abasyn University, Peshawar, 2500, Pakistan.

Molecular Biotechnology
|November 7, 2023
PubMed

Insights

This study designed a novel multi-epitope vaccine against Proteus penneri, a resistant hospital pathogen. In silico analysis shows promising potential for protective immunity, warranting further experimental validation.

Area of Science:

  • Computational vaccinology
  • Bioinformatics
  • Immunoinformatics
  • Infectious disease research

Background:

  • Proteus penneri is a gram-negative bacterium causing hospital-associated infections.
  • P. penneri exhibits natural resistance to multiple antibiotics, necessitating alternative prevention strategies.
  • No vaccines are currently available for P. penneri infections.

Purpose of the Study:

  • To design a theoretical multi-epitope vaccine construct against Proteus penneri using reverse vaccinology and immunoinformatics.
  • To identify potential vaccine target proteins and immunodominant epitopes.
  • To evaluate the binding affinity and stability of the designed vaccine construct with immune receptors.

Main Methods:

  • Bacterial pan-genome analysis (BPGA) was used to identify core proteins from the P. penneri proteome.
  • Vaccine target candidates were identified, and B-cell and T-cell epitopes were predicted using the IEDB database.
  • A multi-epitope vaccine construct was designed, incorporating linkers and a cholera toxin B-subunit adjuvant, followed by in silico docking and molecular dynamics simulations.

Main Results:

  • Two promising vaccine targets were identified: Hcp family type VI secretion system effector and superoxide dismutase family protein.
  • A 183-amino acid vaccine construct was designed using four selected epitopes and demonstrated favorable physicochemical properties.
  • In silico docking revealed strong binding affinities to MHC-I, MHC-II, and TLR-4 receptors, with significant negative binding energy scores.

Conclusions:

  • The in silico designed multi-epitope vaccine construct shows significant potential for inducing protective immunity against Proteus penneri.
  • The vaccine model exhibits favorable interactions with key immune receptors, suggesting effective immune stimulation.
  • Experimental validation is crucial to confirm the efficacy and immune response of the designed vaccine in vivo.