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Efficient Transfection of In vitro Transcribed mRNA in Cultured Cells Using Peptide-Poloxamine Nanoparticles
Published on: August 17, 2022
Potential health risks of mRNA-based vaccine therapy: A hypothesis
K Acevedo-Whitehouse1, R Bruno2
1Unit for Basic and Applied Microbiology. School of Natural Sciences. Autonomous University of Queretaro, Mexico.
Abstract:
Therapeutic applications of synthetic mRNA were proposed more than 30 years ago, and are currently the basis of one of the vaccine platforms used at a massive scale as part of the public health strategy to get COVID-19 under control. To date, there are no published studies on the biodistribution, cellular uptake, endosomal escape, translation rates, functional half-life and inactivation kinetics of synthetic mRNA, rates and duration of vaccine-induced antigen expression in different cell types. Furthermore, despite the assumption that there is no possibility of genomic integration of therapeutic synthetic mRNA, only one recent study has examined interactions between vaccine mRNA and the genome of transfected cells, and reported that an endogenous retrotransposon, LINE-1 is unsilenced following mRNA entry to the cell, leading to reverse transcription of full length vaccine mRNA sequences, and nuclear entry. This finding should be a major safety concern, given the possibility of synthetic mRNA-driven epigenetic and genomic modifications arising. We propose that in susceptible individuals, cytosolic clearance of nucleotide modified synthetic (nms-mRNAs) is impeded. Sustained presence of nms-mRNA in the cytoplasm deregulates and activates endogenous transposable elements (TEs), causing some of the mRNA copies to be reverse transcribed. The cytosolic accumulation of the nms-mRNA and the reverse transcribed cDNA molecules activates RNA and DNA sensory pathways. Their concurrent activation initiates a synchronized innate response against non-self nucleic acids, prompting type-I interferon and pro-inflammatory cytokine production which, if unregulated, leads to autoinflammatory and autoimmune conditions, while activated TEs increase the risk of insertional mutagenesis of the reverse transcribed molecules, which can disrupt coding regions, enhance the risk of mutations in tumour suppressor genes, and lead to sustained DNA damage. Susceptible individuals would then expectedly have an increased risk of DNA damage, chronic autoinflammation, autoimmunity and cancer. In light of the current mass administration of nms-mRNA vaccines, it is essential and urgent to fully understand the intracellular cascades initiated by cellular uptake of synthetic mRNA and the consequences of these molecular events.
Insights
Synthetic mRNA vaccines may pose risks. Accumulation in cells can trigger immune responses and DNA damage, potentially increasing risks of autoimmunity and cancer.
Area of Science:
- Molecular Biology
- Immunology
- Genomics
Background:
- Synthetic mRNA vaccines are widely used for COVID-19 control.
- Limited understanding exists regarding synthetic mRNA's intracellular behavior and long-term effects.
- Recent findings suggest potential for genomic integration and activation of endogenous retrotransposons.
Purpose of the Study:
- To investigate the intracellular fate and potential risks associated with synthetic mRNA vaccines.
- To explore the link between synthetic mRNA accumulation, immune activation, and genomic instability.
- To highlight the urgent need for comprehensive safety studies on nucleotide-modified synthetic mRNA (nms-mRNA).
Main Methods:
- The study proposes a hypothetical model based on existing literature and recent findings.
- It focuses on the proposed mechanisms of cytosolic accumulation, retrotransposition, and immune pathway activation.
- Analysis of potential consequences including DNA damage, autoinflammation, autoimmunity, and cancer risk.
Main Results:
- Synthetic mRNA may accumulate in the cytoplasm of susceptible individuals.
- Accumulated nms-mRNA can activate endogenous transposable elements (TEs), leading to reverse transcription.
- This process may trigger innate immune responses and increase the risk of insertional mutagenesis and DNA damage.
Conclusions:
- Sustained presence of nms-mRNA may lead to autoinflammatory and autoimmune conditions.
- Activated TEs and reverse transcription raise concerns about genomic integrity and cancer risk.
- Urgent research is needed to fully elucidate the intracellular events and safety implications of synthetic mRNA vaccine administration.
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