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DNA vaccines as promising immuno-therapeutics against cancer: a new insight
Alireza Shariati1, Arya Khezrpour1, Fatemeh Shariati2
1School of Medicine, Tehran University of Medical Sciences (TUMS), Tehran, Iran.
Abstract:
Cancer is one of the leading causes of mortality around the world and most of our conventional treatments are not efficient enough to combat this deadly disease. Harnessing the power of the immune system to target cancer cells is one of the most appealing methods for cancer therapy. Nucleotide-based cancer vaccines, especially deoxyribonucleic acid (DNA) cancer vaccines are viable novel cancer treatments that have recently garnered significant attention. DNA cancer vaccines are made of plasmid molecules that encode tumor-associated or tumor-specific antigens (TAAs or TSAs), and possibly some other immunomodulatory adjuvants such as pro-inflammatory interleukins. Following the internalization of plasmids into cells, their genes are expressed and the tumor antigens are loaded on major histocompatibility molecules to be presented to T-cells. After the T-cells have been activated, they will look for tumor antigens and destroy the tumor cells upon encountering them. As with any other treatment, there are pros and cons associated with using these vaccines. They are relatively safe, usually well-tolerated, stable, easily mass-produced, cost-effective, and easily stored and transported. They can induce a systemic immune response effective on both the primary tumor and metastases. The main disadvantage of DNA vaccines is their poor immunogenicity. Several approaches including structural modification, combination therapy with conventional and novel cancer treatments (such as chemotherapy, radiotherapy, and immune checkpoint blockade (ICB)), and the incorporation of adjuvants into the plasmid structure have been studied to enhance the vaccine's immunogenicity and improve the clinical outcome of cancer patients. In this review, we will discuss some of the most promising optimization strategies and examine some of the important trials regarding these vaccines.
Insights
Deoxyribonucleic acid (DNA) cancer vaccines offer a promising, safe, and cost-effective approach to cancer therapy by stimulating the immune system. Enhancing their immunogenicity is key to improving clinical outcomes for cancer patients.
Area of Science:
- Oncology
- Immunology
- Vaccinology
Background:
- Cancer remains a leading global cause of mortality, with conventional treatments often lacking sufficient efficacy.
- Harnessing the immune system for cancer therapy presents a highly appealing strategy.
- Nucleotide-based vaccines, particularly deoxyribonucleic acid (DNA) cancer vaccines, are emerging as novel therapeutic options.
Purpose of the Study:
- To review the potential of DNA cancer vaccines as a novel cancer treatment.
- To discuss strategies for enhancing the immunogenicity of DNA cancer vaccines.
- To examine important clinical trials involving DNA cancer vaccines.
Main Methods:
- DNA cancer vaccines utilize plasmid molecules encoding tumor antigens and adjuvants.
- Gene expression within cells leads to antigen presentation and T-cell activation.
- This review synthesizes information on optimization strategies and clinical trials.
Main Results:
- DNA vaccines are generally safe, well-tolerated, stable, cost-effective, and can induce systemic anti-tumor immunity.
- A primary limitation of DNA vaccines is their suboptimal immunogenicity.
- Various approaches, including structural modifications, combination therapies, and adjuvant incorporation, are being investigated to improve efficacy.
Conclusions:
- DNA cancer vaccines hold significant promise for cancer treatment due to their safety and potential for systemic immune response.
- Overcoming the challenge of poor immunogenicity is crucial for maximizing their clinical impact.
- Further research and clinical trials focusing on optimization strategies are essential for advancing DNA vaccine-based cancer therapies.
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