Related Experiment Video
Updated: Jul 17, 2026

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Design and structural characterization of a chimeric protein displayed on virus-like particles for targeted immune
Saghi Nooraei1, Abbas Hajizade2, Hossein Tarrahimofrad3
1Department of System Biotechnology, National Institute of Genetic Engineering and Biotechnology (NIGEB), P. O. BOX: 14155-6343, Tehran, 1497716316, Iran.
Abstract:
This study explores the design of a recombinant chimeric protein integrating key immunogenic epitopes from Salmonella Typhi into a macromolecular framework using the innovative SpyCatcher/SpyTag dual conjugation system. S. typhi remains a significant global health challenge, emphasizing the need for novel therapeutic approaches. The engineered chimeric protein, incorporating epitopes from three major S. typhi virulence factors OmpC, OmpF, and flagellin was displayed on AP205 virus-like particles (VLPs), creating a stable and immunogenic complex. Analytical techniques confirmed the successful conjugation and structural integrity of the chimeric protein on VLPs. Molecular dynamics simulations revealed robust interactions between the chimeric protein, incorporating the FliC sequence, and TLR5, highlighting its potential to stimulate both Th1 and Th2 immune responses. The chimeric protein antigen, administered via both subcutaneous and oral routes in different formulations (alone, with adjuvant, or conjugated to VLPs), elicited significant immune responses in BALB/c mice, assessed through antibody assays, cytokine profiling, and challenge tests. Although the chimeric protein alone did not confer full protection, formulations such as the chimeric protein displayed on VLPs (hereafter referred to as NanosalVAX) provided 100% survival against a lethal bacterial challenge. The primary objective is to design a macromolecular VLP platform displaying a S. typhi chimeric antigen (OFFS-ST) to elicit synergistic humoral-cellular immunity against typhoid. This study underscores the potential of engineered macromolecules, such as chimeric proteins and VLPs, in advancing therapeutic applications and highlights their potential in combating infectious diseases.
More Related Videos
12:53Cell-Free Scaled Production and Adjuvant Addition to a Recombinant Major Outer Membrane Protein from Chlamydia muridarum for Vaccine Development
Published on: March 16, 2022
08:07A "Plug-And-Display" Nanoparticle Vaccine Platform Based on Outer Membrane Vesicles Displaying SARS-CoV-2 Receptor-Binding Domain
Published on: July 25, 2022
Related Concept Videos
Viral Structure
Antibody Structure
Antibodies, also known as immunoglobulins (Ig), are essential players of the adaptive immune system. These antigen-binding proteins are produced by B cells and make up 20 percent of the total blood plasma by weight. In mammals, antibodies fall into five different classes, which each elicits a different biological response upon antigen binding.
The Y-Shaped Structure of Antibodies Consists of Four Polypeptide Chains
Antibodies consist of four polypeptide chains: two identical heavy...
Antibody Structure
Antibodies, also known as immunoglobulins (Ig), are essential players of the adaptive immune system. These antigen-binding proteins are produced by B cells and make up 20 percent of the total blood plasma by weight. In mammals, antibodies fall into five different classes, which each elicits a different biological response upon antigen binding.
The Y-Shaped Structure of Antibodies Consists of Four Polypeptide Chains
Antibodies consist of four polypeptide chains: two identical heavy...