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bioRxiv · 10.1101/2024.08.22.607124

A modular encapsulation system for precision delivery of proteins, nucleic acids and therapeutics

Abstract

Targeted nanoparticles have the potential to revolutionize therapeutics for medical applications. Here, we demonstrate the utility of a flexible precision nanovesicle delivery system for functional delivery of DNA, RNA, proteins and drugs into target cells. Nanovesicles generated by the membrane sculpting protein caveolin, termed caveospheres, can be loaded with RNA, DNA, proteins or drugs post-synthesis or incorporate genetically-encoded cargo proteins during production without the need for protein purification. Functionalized fluorescently-labeled caveospheres form a modular system that shows high stability in biological fluids, specific uptake by target-positive cells, and can deliver proteins, drugs, DNA, and mRNA directly to the cytoplasm and nuclei of only the target cells. The negligible level of off-target transduction and uniform levels of targeted expression demonstrates advantages of the system over lipid-mediated gene delivery. Caveospheres can also be engineered to mimic viral particles by displaying the SARS-CoV-2-RBD protein, enabling targeted delivery to human bronchial epithelial cells. We demonstrate their application as a targeted transfection system for cells in culture, and critically, their efficacy in precision tumor killing in vivo.

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BibTeXRIS

Luong, T. D., Martel, N., Rae, J., Lo, H. P., Lim, Y.-W., Wu, Y., McMahon, K.-A., Fletcher, N., Thurecht, K. J., Johnston, A. P. R., Ariotti, N., Hall, T. E., Parton, R. G.. 2024-08-23. A modular encapsulation system for precision delivery of proteins, nucleic acids and therapeutics. https://doi.org/10.1101/2024.08.22.607124

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