Alpha-galactosylceramide improves the potency of mRNA LNP vaccines against cancer and intracellular bacteria

佐剂 免疫原性 免疫系统 信使核糖核酸 树突状细胞 免疫学 化学 生物 生物化学 基因
作者
Sofie Meulewaeter,Ilke Aernout,Joke Deprez,Yanou Engelen,Margo De Velder,Lorenzo Franceschini,Karine Breckpot,Serge Van Calenbergh,Caroline Asselman,Katie Boucher,Francis Impens,Stefaan C. De Smedt,R Verbeke,Ine Lentacker
出处
期刊:Journal of Controlled Release [Elsevier BV]
卷期号:370: 379-391 被引量:1
标识
DOI:10.1016/j.jconrel.2024.04.052
摘要

Although various types of mRNA-based vaccines have been explored, the optimal conditions for induction of both humoral and cellular immunity remain rather unknown. In this study, mRNA vaccines of nucleoside-modified mRNA in lipoplexes (LPXs) or lipid nanoparticles (LNPs) were evaluated after administration in mice through different routes, assessing mRNA delivery, tolerability and immunogenicity. In addition, we investigated whether mRNA vaccines could benefit from the inclusion of the adjuvant alpha-galactosylceramide (αGC), an invariant Natural Killer T (iNKT) cell ligand. Intramuscular (IM) vaccination with ovalbumin (OVA)-encoding mRNA encapsulated in LNPs adjuvanted with αGC showed the highest antibody- and CD8+ T cell responses. Furthermore, we observed that addition of signal peptides and endocytic sorting signals of either LAMP1 or HLA-B7 in the OVA-encoding mRNA sequence further enhanced CD8+ T cell activation although reducing the induction of IgG antibody responses. Moreover, mRNA LNPs with the ionizable lipidoid C12–200 exhibited higher pro-inflammatory- and reactogenic activity compared to mRNA LNPs with SM-102, correlating with increased T cell activation and antitumor potential. We also observed that αGC could further enhance the cellular immunity of clinically relevant mRNA LNP vaccines, thereby promoting therapeutic antitumor potential. Finally, a Listeria monocytogenes mRNA LNP vaccine supplemented with αGC showed synergistic protective effects against listeriosis, highlighting a key advantage of co-activating iNKT cells in antibacterial mRNA vaccines. Taken together, our study offers multiple insights for optimizing the design of mRNA vaccines for disease applications, such as cancer and intracellular bacterial infections.
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