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Updated: May 7, 2026

piggyBac Transposon System Modification of Primary Human T Cells
Published on: November 5, 2012
Exogenous mRNA delivery and bioavailability in gene transfer mediated by piggyBac transposition
Solenne Bire1, David Gosset, Gwenhael Jégot
1LNOX, GICC UMR CNRS 7292, UFR de Médecine, Bâtiment Dutrochet, 10 Boulevard Tonnellé, Tours 37000, France. florence.bonnin@univ-tours.fr.
Background:
Up to now, the different uptake pathways and the subsequent intracellular trafficking of plasmid DNA have been largely explored. By contrast, the mode of internalization and the intracellular routing of an exogenous mRNA in transfected cells are poorly investigated and remain to be elucidated. The bioavailability of internalized mRNA depends on its intracellular routing and its potential accumulation in dynamic sorting sites for storage: stress granules and processing bodies. This question is of particular significance when a secure transposon-based system able to integrate a therapeutic transgene into the genome is used. Transposon vectors usually require two components: a plasmid DNA, carrying the gene of interest, and a source of transposase allowing the integration of the transgene. The principal drawback is the lasting presence of the transposase, which could remobilize the transgene once it has been inserted. Our study focused on the pharmacokinetics of the transposition process mediated by the piggyBac transposase mRNA transfection. Exogenous mRNA internalization and trafficking were investigated towards a better apprehension and fine control of the piggyBac transposase bioavailability.
Results:
The mRNA prototype designed in this study provides a very narrow expression window of transposase, which allows high efficiency transposition with no cytotoxicity. Our data reveal that exogenous transposase mRNA enters cells by clathrin and caveolae-mediated endocytosis, before finishing in late endosomes 3 h after transfection. At this point, the mRNA is dissociated from its carrier and localized in stress granules, but not in cytoplasmic processing bodies. Some weaker signals have been observed in stress granules at 18 h and 48 h without causing prolonged production of the transposase. So, we designed an mRNA that is efficiently translated with a peak of transposase production 18 h post-transfection without additional release of the molecule. This confines the integration of the transgene in a very small time window.
Conclusion:
Our results shed light on processes of exogenous mRNA trafficking, which are crucial to estimate the mRNA bioavailability, and increase the biosafety of transgene integration mediated by transposition. This approach provides a new way for limiting the transgene copy in the genome and their remobilization by mRNA engineering and trafficking.
Insights
Understanding exogenous mRNA trafficking is key for safe gene therapy. This study reveals how piggyBac transposase mRNA enters cells and localizes to stress granules, enabling controlled transgene integration.
Area of Science:
- Molecular Biology
- Cell Biology
- Gene Therapy
Background:
- Uptake and intracellular trafficking of plasmid DNA are well-studied.
- Exogenous mRNA internalization and intracellular routing remain poorly understood.
- mRNA bioavailability depends on intracellular routing and accumulation in stress granules or processing bodies.
Purpose of the Study:
- Investigate the pharmacokinetics of transposition mediated by piggyBac transposase mRNA transfection.
- Elucidate exogenous mRNA internalization and trafficking for better control of transposase bioavailability.
- Enhance biosafety in transposon-based gene integration systems.
Main Methods:
- Designed a novel mRNA prototype for piggyBac transposase expression.
- Utilized cell transfection and microscopy to track mRNA internalization and localization.
- Analyzed transposase production and transgene integration timing.
Main Results:
- Exogenous mRNA enters cells via clathrin and caveolae-mediated endocytosis.
- mRNA localizes to stress granules, not processing bodies, 3 hours post-transfection.
- A narrow expression window and peak transposase production at 18 hours were achieved, limiting cytotoxicity and transgene remobilization.
Conclusions:
- Exogenous mRNA trafficking processes are crucial for estimating mRNA bioavailability and enhancing biosafety.
- mRNA engineering and trafficking control limit transgene copy number and remobilization.
- This approach offers a novel strategy for secure transgene integration via transposition.

