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Updated: Jun 13, 2026

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
DNA vaccination strategies for anti-tumour effective gene therapy protocols
Emanuela Signori1, Sandra Iurescia, Emanuela Massi
1CNR-Institute of Neurobiology and Molecular Medicine, Via Fosso del Cavaliere100, 00133 Rome, Italy. emanuela.signori@cnr.it
Abstract:
After more than 15 years of experimentation, DNA vaccines have become a promising perspective for tumour diseases, and animal models are widely used to study the biological features of human cancer progression and to test the efficacy of vaccination protocols. In recent years, immunisation with naked plasmid DNA encoding tumour-associated antigens or tumour-specific antigens has revealed a number of advantages: antigen-specific DNA vaccination stimulates both cellular and humoral immune responses; multiple or multi-gene vectors encoding several antigens/determinants and immune-modulatory molecules can be delivered as single administration; DNA vaccination does not induce autoimmune disease in normal animals; DNA vaccines based on plasmid vectors can be produced and tested rapidly and economically. However, DNA vaccines have shown low immunogenicity when tested in human clinical trials, and compared with traditional vaccines, they induce weak immune responses. Therefore, the improvement of vaccine efficacy has become a critical goal in the development of effective DNA vaccination protocols for anti-tumour therapy. Several strategies are taken into account for improving the DNA vaccination efficacy, such as antigen optimisation, use of adjuvants and delivery systems like electroporation, co-expression of cytokines and co-stimulatory molecules in the same vector, different vaccination protocols. In this review we discuss how the combination of these approaches may contribute to the development of more effective DNA vaccination protocols for the therapy of lymphoma in a mouse model.
Insights
DNA vaccines show promise for cancer treatment but have low immunogenicity in humans. Combining strategies like antigen optimization and novel delivery systems may improve DNA vaccine efficacy for anti-tumour therapy.
Area of Science:
- Oncology
- Immunology
- Vaccinology
Background:
- DNA vaccines offer advantages for cancer therapy, including stimulating cellular and humoral immunity and enabling multi-gene delivery.
- Despite potential, DNA vaccines exhibit low immunogenicity in human trials, necessitating efficacy improvements.
Purpose of the Study:
- To review strategies for enhancing DNA vaccine efficacy against tumour diseases.
- To discuss the combination of approaches for developing effective DNA vaccination protocols for lymphoma therapy in mouse models.
Main Methods:
- Review of existing literature on DNA vaccine development and optimization strategies.
- Analysis of methods to improve immunogenicity, including antigen optimization, adjuvants, and delivery systems like electroporation.
- Discussion of co-expression of immune-modulatory molecules and varied vaccination protocols.
Main Results:
- DNA vaccination stimulates antigen-specific immune responses and can be economically produced.
- Current DNA vaccines demonstrate weak immune responses in human clinical trials compared to traditional vaccines.
Conclusions:
- Improving DNA vaccine efficacy is crucial for successful anti-tumour therapy.
- Combining antigen optimization, adjuvants, advanced delivery systems, and co-expression strategies holds potential for more effective DNA vaccination protocols.
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