Nature-inspired platform nanotechnology for RNA delivery to myeloid cells and their bone marrow progenitors

Publication date

2025-04

Authors

Hofstraat, Stijn R.J.
Anbergen, Tom
Zwolsman, Robby
Deckers, Jeroen
van Elsas, Yuri
Trines, Mirre M.
Versteeg, Iris
Hoorn, Daniek
Ros, Gijs W.B.
Bartelet, Branca M.

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

Nucleic acid therapeutics are used for silencing, expressing or editing genes in vivo. However, their systemic stability and targeted delivery to bone marrow resident cells remains a challenge. In this study we present a nanotechnology platform based on natural lipoproteins, designed for delivering small interfering RNA (siRNA), antisense oligonucleotides and messenger RNA to myeloid cells and haematopoietic stem and progenitor cells in the bone marrow. We developed a prototype apolipoprotein nanoparticle (aNP) that stably incorporates siRNA into its core. We then created a comprehensive library of aNP formulations and extensively characterized their physicochemical properties and in vitro performance. From this library, we selected eight representative aNP-siRNA formulations and evaluated their ability to silence lysosomal-associated membrane protein 1 (Lamp1) expression in immune cell subsets in mice after intravenous administration. Using the most effective aNP identified from the screening process, we tested the platform’s potential for therapeutic gene silencing in a syngeneic murine tumour model. We also demonstrated the aNP platform’s suitability for splice-switching with antisense oligonucleotides and for protein production with messenger RNA by myeloid progenitor cells in the bone marrow. Our data indicate that the aNP platform holds translational potential for delivering various types of nucleic acid therapeutics to myeloid cells and their progenitors.

Keywords

Bioengineering, Atomic and Molecular Physics, and Optics, Biomedical Engineering, General Materials Science, Condensed Matter Physics, Electrical and Electronic Engineering

Citation

Hofstraat, S R J, Anbergen, T, Zwolsman, R, Deckers, J, van Elsas, Y, Trines, M M, Versteeg, I, Hoorn, D, Ros, G W B, Bartelet, B M, Hendrikx, M M A, Darwish, Y B, Kleuskens, T, Borges, F, Maas, R J F, Verhalle, L M, Tielemans, W, Vader, P, de Jong, O G, Tabaglio, T, Wee, D K B, Teunissen, A J P, Brechbühl, E, Janssen, H M, Fransen, P M, de Dreu, A, Schrijver, D P, Priem, B, Toner, Y C, Beldman, T J, Netea, M G, Mulder, W J M, Kluza, E & van der Meel, R 2025, 'Nature-inspired platform nanotechnology for RNA delivery to myeloid cells and their bone marrow progenitors', Nature Nanotechnology, vol. 20, no. 4, pp. 532-542. https://doi.org/10.1038/s41565-024-01847-3