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Immunostimulatory Agent Evaluation: Lymphoid Tissue Extraction and Injection Route-Dependent Dendritic Cell Activation
Published on: September 16, 2018
The mRNA component of LNP-mRNA vaccines triggers IFNAR-dependent immune activation which attenuates the adaptive
Liat Bar-On1, Hila Cohen1, Uri Elia1
1Department of Biochemistry and Molecular Genetics, Israel Institute for Biological Research, Ness-Ziona, Israel.
Abstract:
Encapsulation of mRNA in lipid nanoparticles (LNPs) has established the LNP-mRNA platform as the strategy of choice for the rapid development of vaccines against both existing and emerging pathogens. However, despite its widespread global implementation during the COVID-19 pandemic, the immunological mechanisms underlying its efficacy remain incompletely understood. In this study, we investigated in a murine model, the early and robust innate immunity events elicited following immunization with an LNP-mRNA vaccine. Using mRNAs encoding two different proteins as well as a non-coding sequence, it is demonstrated that the mRNA component-rather than the LNP or the encoded antigen -is essential for inducing a potent innate immune response. This response is characterized by rapid activation of dendritic cells, recruitment of monocytes to draining lymph nodes, and systemic cytokine responses involving activation of various innate immune cell populations. Notably, these effects are all dependent on signaling through the type I interferon receptor (IFNAR). Importantly, we show that even a brief and transient inhibition of IFNAR signaling significantly enhances the ability of the LNP-mRNA vaccine to elicit adaptive immune responses, as evidenced by increased frequencies of antigen-specific CD8+ T cells and elevated titers of antigen-specific antibodies. Together, our findings reveal that the strong IFNAR-dependent innate response induced by mRNA can attenuate subsequent adaptive immunity. These insights should be considered in the future design and optimization of LNP-mRNA vaccine platforms.
Insights
Messenger RNA (mRNA) vaccines trigger a strong innate immune response essential for their function. However, this response can limit the vaccine
Area of Science:
- Immunology
- Vaccinology
- Molecular Biology
Background:
- Lipid nanoparticle-encapsulated mRNA (LNP-mRNA) vaccines are crucial for rapid vaccine development.
- The precise immunological mechanisms of LNP-mRNA vaccine efficacy are not fully understood.
- Understanding innate immunity is key to optimizing LNP-mRNA vaccine design.
Purpose of the Study:
- Investigate early innate immune events following LNP-mRNA vaccination in mice.
- Determine the specific component of LNP-mRNA vaccines responsible for innate immune stimulation.
- Assess the impact of innate immunity on subsequent adaptive immune responses.
Main Methods:
- Administered LNP-mRNA vaccines encoding different proteins or non-coding sequences to a murine model.
- Analyzed dendritic cell activation, monocyte recruitment, and cytokine profiles.
- Utilized type I interferon receptor (IFNAR) signaling inhibition to evaluate its effects.
Main Results:
- The mRNA component, not the LNP or antigen, is critical for potent innate immune response.
- Innate immunity involves rapid dendritic cell activation, monocyte recruitment, and systemic cytokine release.
- These responses are dependent on type I interferon receptor (IFNAR) signaling.
- Transient IFNAR inhibition significantly boosted adaptive immunity, including CD8+ T cell and antibody responses.
Conclusions:
- The mRNA component drives a strong, IFNAR-dependent innate immune response.
- This robust innate immunity can paradoxically attenuate adaptive immune responses.
- Future LNP-mRNA vaccine design should consider modulating IFNAR signaling to enhance adaptive immunity.
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