Related Experiment Video
Updated: Jul 27, 2026

Utilizing the Antigen Capsid-Incorporation Strategy for the Development of Adenovirus Serotype 5-Vectored Vaccine Approaches
Published on: May 6, 2015
Lysosome-Associated Membrane Protein Targeting Strategy Improved Immunogenicity of Glycoprotein-Based DNA Vaccine for
Xiyang Zhang1,2, Yubo Sun1, Junqi Zhang1
1Department of Immunology, The Key Laboratory of Bio-Hazard Damage and Prevention Medicine, Basic Medicine School, Air Force Medical University (The Fourth Military Medical University), Xi'an 710032, China.
Abstract:
Marburg hemorrhagic fever (MHF) is a fatal infectious disease caused by Marburg virus (MARV) infection, and MARV has been identified as a priority pathogen for vaccine development by the WHO. The glycoprotein (GP) of MARV mediates viral adhesion and invasion of host cells and therefore can be used as an effective target for vaccine development. Moreover, DNA vaccines have unique advantages, such as simple construction processes, low production costs, and few adverse reactions, but their immunogenicity may decrease due to the poor absorption rate of plasmids. Lysosome-associated membrane protein 1 (LAMP1) can direct antigens to lysosomes and endosomes and has great potential for improving the immunogenicity of nucleic acid vaccines. Therefore, we constructed a DNA vaccine based on a codon-optimized MARV GP (ID MF939097.1) fused with LAMP1 and explored the effect of a LAMP targeting strategy on improving the immunogenicity of the MARV DNA vaccine. ELISA, ELISpot, and flow cytometry revealed that the introduction of LAMP1 into the MARV DNA candidate vaccine improved the humoral and cellular immune response, enhanced the secretion of cytokines, and established long-term immune protection. Transcriptome analysis revealed that the LAMP targeting strategy significantly enriched antigen processing and presentation-related pathways, especially the MHC class II-related pathway, in the candidate vaccine. Our study broadens the strategic vision for enhanced DNA vaccine design and provides a promising candidate vaccine for MHF prevention.
Insights
A novel Marburg virus (MHF) DNA vaccine fused with LAMP1 enhances immune responses. This strategy improves antigen presentation and provides long-term protection against Marburg hemorrhagic fever.
Area of Science:
- Virology
- Immunology
- Vaccine Development
Background:
- Marburg hemorrhagic fever (MHF) is a fatal disease caused by Marburg virus (MARV), a WHO priority pathogen.
- The MARV glycoprotein (GP) is a key target for vaccine development.
- DNA vaccines offer advantages but can have limited immunogenicity due to poor plasmid absorption.
Purpose of the Study:
- To investigate the efficacy of a DNA vaccine targeting MARV GP fused with Lysosome-associated membrane protein 1 (LAMP1).
- To evaluate the impact of LAMP1 targeting on improving the immunogenicity of a MARV DNA vaccine.
Main Methods:
- Construction of a codon-optimized MARV GP DNA vaccine fused with LAMP1.
- Assessment of immune responses using ELISA, ELISpot, and flow cytometry.
- Transcriptome analysis to investigate the effects on antigen processing and presentation pathways.
Main Results:
- The MARV GP-LAMP1 DNA vaccine significantly enhanced humoral and cellular immune responses.
- Increased cytokine secretion and long-term immune protection were observed.
- Transcriptome analysis revealed enrichment of antigen processing and presentation pathways, particularly MHC class II.
Conclusions:
- LAMP1 targeting is a viable strategy to enhance the immunogenicity of MARV DNA vaccines.
- The developed MARV GP-LAMP1 DNA vaccine candidate shows promise for MHF prevention.
- This approach broadens strategies for designing effective DNA vaccines.
More Related Videos
05:15Detection of Neutralization-sensitive Epitopes in Antigens Displayed on Virus-Like Particle VLP-Based Vaccines Using a Capture Assay
Published on: February 10, 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
Microorganisms in Medicine and Therapeutics
Vaccines