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Biology subjects

Cagnes, M.

Publications and source records attributed to Cagnes, M..

2 recordsLinked to original sources

Post-loading ribonucleic acid into lipid nanoparticle carriers

Lipid nanoparticles (LNPs) are effective carriers for messenger ribonucleic acid (mRNA) delivery in vaccines; however, their reliance on extreme cold-chain storage limits global manufacturing and distribution. Conventional LNPs are formed by rapidly mixing four lipids with mRNA through electrostatic interactions between cationic ionizable lipids and negatively charged nucleic acids, facilitating nucleation and precipitation of mRNA-loaded LNPs. However, this binding also accelerates mRNA degradation, requiring stringent cold storage which limits widespread vaccine deployment. To overcome this limitation, we introduce a post-loading strategy in which empty LNPs (eLNPs) are first fabricated and RNA is subsequently loaded at a later stage. Using scalable confined impinging jet (CIJ) mixers, we optimized pH, buffer composition, lipid concentration, and ethanol content to produce colloidally stable eLNPs. Controlled adjustment of ethanol content and pH enabled efficient incorporation of four distinct RNA payloads while maintaining loaded LNP diameters below 100 nm. Post-loaded LNPs demonstrated mRNA delivery efficiencies in HeLa cells comparable to those of conventionally co-precipitated LNPs. Consistent size distributions and zeta potentials further confirmed comparable surface properties. Structural characterization by x-ray and neutron scattering revealed similar internal architectures for post-loaded and co-precipitated LNPs without compromising RNA loading efficiency. Together, these results demonstrate equivalent cellular delivery performance between the two formulations. This post-loading approach enables decentralized assembly of mRNA LNPs at the point of administration, with both eLNPs and mRNA stored under mild refrigeration, thereby improving vaccine accessibility. Moreover, eLNPs function as modular laboratory reagents, facilitating the translation of mRNA research toward clinical applications.

bioengineering↗

Myelin Basic Protein Binding Is Modulated by Leaflet Asymmetry and Lipid Composition

Compositional asymmetry between lipid bilayer leaflets is a defining feature of biological membranes, yet its role in modulating protein binding remains largely unexplored. Here, we investigate how leaflet-specific composition affects the interaction between Myelin Basic Protein and biomimetic myelin membranes using neutron reflectometry. Asymmetric supported myelin bilayers containing deuterated cholesterol in the cytoplasmic leaflet enabled resolution of structural asymmetry. Neutron reflectometry measurements show that Myelin Basic Protein binds preferentially to asymmetric supported bilayers mimicking native myelin, whereas Experimental Autoimmune Encephalomyelitis-modified compositions exhibit weaker binding and more pronounced protein insertion. Disruption of asymmetry--either by thermal-induced lipid redistribution or by using symmetric cytoplasmic myelin--leads to a marked reduction in Myelin Basic Protein binding, despite increased membrane charge. Following vesicle adsorption and formation of a second bilayer, the protein layer narrows to near in vivo thickness in both systems, with the diseased condition exhibiting a wider inter-bilayer spacing. These results underscore the relevance of lipid asymmetry and composition in governing protein - membrane interactions, with implications for the molecular basis of myelin stability and demyelination.

biophysics↗