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In this protocol, we developed a cationic nanoemulsion-encapsulated retinoic acid to be used as an adjuvant to promote antigen-specific systemic and mucosal responses. Compared to traditional NE adjuvants, it has the following two advantages. First, in general, the surface of O/W NEs has a high negative charge, which makes it difficult to directly load antigens. Cationic NEs can effectively adsorb peptide or protein antigens and enhance the specific immunogenicity. Secondly, experience in traditional vaccine research has shown that it is difficult to stimulate the mucosal response by subcutaneous or intramuscular injection5. By adding the FDA-approved RA to the nanoemulsion14,15,16, OVA-specific sIgA was promoted in the vagina and small intestine by intramuscular injection. This protocol has not been validated in other antigens except for OVA. In future studies, animal models of intestinal-related diseases can be used to further evaluate the effect and mechanism of CNE-RA in enhancing vaccine protection.
High pressure homogenization, shear mixing and ultrasonication are the most common high-energy emulsification methods used to prepare NEs, with high pressure homogenization providing the best homogeneity17. However, high pressure homogenization methods often require expensive specialized equipment, with high preparation costs and non-negligible cooling problems18. In our previous experiments, it was found that the homogenization pressure and the number of cycles had an effect on the particle size of NEs, and within a certain range, the higher the homogenization pressure and the higher the number of cycles, the smaller the particle size tended to be. The preparation of oil-in-water emulsion colostrum effectively converts the oil and water phases into large droplets and reduces the number of homogenization cycles. If this step is omitted, increasing the number of homogenization cycles can eventually result in nano-emulsions with the same particle size and dispersion. Replacing PBS in the aqueous phase with 0.9% saline or sodium citrate buffer had no effect on the particle size and dispersion of the NEs.
Multiple cationic lipids are broadly applied in vaccine design19, DOTAP was chosen for that it has been approved for clinical use, shows good safety, and is well tolerated. Excessive positive charge on the NE surface may lead to cytotoxicity. For safety reasons, the type and amount of cationic lipids need to be taken into consideration when preparing cationic NEs. Other cationic lipids commonly used in vaccine studies are DLin-MC3-DMA ((6Z,9Z,28Z,31Z)-heptatriacont-6,9,28,31-tetraene-19-yl4-(dimethylamino)butanoate)20, DMG-PEG2000 (1,2-dimyristoyl-rac-glycero-3-methoxypolyethylene glycol-2000), DOTMA (N,N,N-trimethyl-2,3-bis(octadec-9-en-1-yloxy)propan-1-aminium chloride)21, DC-Chol (3β- [N-(N′,N′-dimethylaminoethane)-carbamoyl]cholesterol hydrochloride)22, and whether they can be used to prepare cationic NEs needs to be further investigated.
In recent years, RA has attracted attention due to its ability to induce immune cell homing to the intestinal mucosa through various pathways, however, RA is not only poorly water-soluble but also unstable to light and oxygen. During the preparation and storage of NEs, constant attention should be paid to the protection of RA from light and oxygen. RA will rapidly be oxidized and decomposed when exposed to light and oxygen, eventually losing its adjuvant effect.