Abstract
The membrane-protein interface on lipid-based nanoparticles influences their in vivo behavior. Better understanding may evolve current drug delivery methods toward effective targeted nanomedicine. Previously, the cell-selective accumulation of a liposome formulation in vivo is demonstrated, through the recognition of lipid phase-separation by triglyceride lipases. This exemplified how liposome morphology and composition can determine nanoparticle-protein interactions. Here, the lipase-induced compositional and morphological changes of phase-separated liposomes—which bear a lipid droplet in their bilayer— are investigated, and the mechanism upon which lipases recognize and bind to the particles is unravelled. The selective lipolytic degradation of the phase-separated lipid droplet is observed, while nanoparticle integrity remains intact. Next, the Tryptophan-rich loop of the lipase is identified as the region with which the enzymes bind to the particles. This preferential binding is due to lipid packing defects induced on the liposome surface by phase separation. In parallel, the existing knowledge that phase separation leads to in vivo selectivity, is utilized to generate phase-separated mRNA-LNPs that target cell-subsets in zebrafish embryos, with subsequent mRNA delivery and protein expression. Together, these findings can expand the current knowledge on selective nanoparticle-protein communications and in vivo behavior, aspects that will assist to gain control of lipid-based nanoparticles.
| Original language | English |
|---|---|
| Article number | 2310872 |
| Number of pages | 15 |
| Journal | Advanced Materials |
| Volume | 36 |
| Issue number | 6 |
| Early online date | 21 Nov 2023 |
| DOIs | |
| Publication status | Published - 8 Feb 2024 |
Funding
P.P., R.v.d.P., N.v.H., and W.L.v.O. contributed equally to this work. This work was supported by a Leiden/Huygens Scholarship grant supporting P.P. This work was also supported by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy – EXC 2033 – 390677874 – RESOLV. The authors also thanked the NWO Vidi scheme (Project No. 723.016.005), and the DFG (Grant No. RI2791/2‐1) for funding H.J.R. and N.v.H. This work was also benefited from access to the Netherlands Centre for Electron Nanoscopy (NeCEN) at Leiden University, an Instruct‐ERIC center, with technical assistance from Ludovic Renault and Birgit Luef. The Dutch Research Organization NWO (Snellius@Surfsara) and the HLRN Göttingen/Berlin are acknowledged for the provided computational resources. The authors would like to thank Aleksandra Chikunova for fruitful discussions during this project, and Bjor de Wit whose M.Sc. thesis project helped shaping the research presented here through its initial stages.
| Funders | Funder number |
|---|---|
| Deutsche Forschungsgemeinschaft | EXC 2033 – 390677874 |
| Nederlandse Organisatie voor Wetenschappelijk Onderzoek | RI2791/2‐1, 723.016.005 |
Keywords
- cell targeting
- lipases
- lipid-based nanoparticles
- mRNA-delivery
- nano-bio interface
- phase-separated
- Lipids/chemistry
- Zebrafish
- Liposomes/chemistry
- Animals
- Lipase/metabolism
- Nanoparticles/chemistry
- RNA, Messenger
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