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Updated: Sep 20, 2025

Linear Amplification Mediated PCR – Localization of Genetic Elements and Characterization of Unknown Flanking DNA
Published on: June 25, 2014
Linear DNA amplicons as a novel cancer vaccine strategy
Antonella Conforti1,2, Erika Salvatori3, Lucia Lione3
1Takis, Via Castel Romano 100, 00128, Rome, Italy. conforti@evvivax.com.
Background:
DNA-based vaccines represent a simple, safe and promising strategy for harnessing the immune system to fight infectious diseases as well as various forms of cancer and thus are considered an important tool in the cancer immunotherapy toolbox. Nonetheless, the manufacture of plasmid DNA vaccines has several drawbacks, including long lead times and the need to remove impurities from bacterial cultures. Here we report the development of polymerase chain reaction (PCR)-produced amplicon expression vectors as DNA vaccines and their in vivo application to elicit antigen-specific immune responses in animal cancer models.
Methods:
Plasmid DNA and amplicon expression was assessed both in vitro, by Hela cells transfection, and in vivo, by evaluating luciferase expression in wild-type mice through optical imaging. Immunogenicity induced by DNA amplicons was assessed by vaccinating wild-type mice against a tumor-associated antigen, whereas the antitumoral effect of DNA amplicons was evaluated in a murine cancer model in combination with immune-checkpoint inhibitors (ICIs).
Results:
Amplicons encoding tumor-associated-antigens, such as telomerase reverse transcriptase or neoantigens expressed by murine tumor cell lines, were able to elicit antigen-specific immune responses and proved to significantly impact tumor growth when administered in combination with ICIs.
Conclusions:
These results strongly support the further exploration of the use of PCR-based amplicons as an innovative immunotherapeutic approach to cancer treatment.
Insights
Polymerase chain reaction (PCR)-produced amplicon expression vectors offer a novel DNA vaccine approach for cancer immunotherapy. These amplicons effectively elicit antigen-specific immune responses and enhance anti-tumor effects when combined with immune-checkpoint inhibitors.
Area of Science:
- Immunology
- Molecular Biology
- Cancer Research
Background:
- DNA vaccines are a promising tool for cancer immunotherapy but face manufacturing challenges.
- Plasmid DNA vaccine production involves long lead times and impurity removal.
- Polymerase chain reaction (PCR)-produced amplicon expression vectors are developed as an alternative DNA vaccine strategy.
Purpose of the Study:
- To develop and evaluate PCR-produced amplicon expression vectors as DNA vaccines.
- To assess the in vivo application of amplicon DNA vaccines in animal cancer models.
- To investigate the immunogenicity and anti-tumor efficacy of amplicon DNA vaccines.
Main Methods:
- In vitro and in vivo assessment of plasmid DNA and amplicon expression.
- Evaluation of luciferase expression in mice via optical imaging.
- Assessment of immunogenicity and anti-tumor effects in murine cancer models, including combination with immune-checkpoint inhibitors (ICIs).
Main Results:
- Amplicons encoding tumor-associated antigens (TAAs) and neoantigens induced antigen-specific immune responses.
- Amplicon DNA vaccines significantly impacted tumor growth.
- The combination of amplicon DNA vaccines with ICIs demonstrated significant anti-tumor effects.
Conclusions:
- PCR-based amplicons represent an innovative immunotherapeutic approach for cancer treatment.
- Further exploration of amplicon DNA vaccines is strongly supported by these findings.
- Amplicon DNA vaccines show potential in enhancing cancer immunotherapy strategies.
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