Cyclic-thiourea ionizable lipids program multilamellar mRNA-LNPs for sustained expression, frozen-storage stability and potent vaccine immunotherapy

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Abstract

Lipid nanoparticles (LNPs) are the leading delivery vehicles for mRNA therapeutics, yet transient expression and limited formulation stability constrain their broader therapeutic application. Here we report the phenotype-driven discovery of an ionizable lipid (HI-62) bearing a 1,3,5-triazinane-2-thione (cyclic-thiourea) headgroup that reproducibly assemble mRNA into onion-like multilamellar nanoparticles. Cryogenic electron microscopy revealed ordered internal lamellae, while molecular-dynamics simulations supported a cooperative assembly model involving pH-responsive electrostatics, headgroup preorganization and short-range directional interactions. The lead HI-62 formulation maintained greater than 95% mRNA encapsulation across N/P ratios of 3-7, prolonged reporter expression for substantially longer durations than benchmark formulations following intravenous and intramuscular delivery, and retains physicochemical integrity and in vivo potency after repeated freeze-thaw cycles and 18 months of storage at −20 °C. In the tumor models, HI-62 elicits robust cellular responses and achieved significant inhibition of tumor growth. These findings establish cyclic-thiourea headgroup chemistry as a design principle for programming lipid-RNA organization into multilamellar architecture, and provide a design principle for next-generation LNPs platform with durable protein expression and superior stability. The HI-62-based formulation has been utilized in mRNA cancer vaccine program which will enter clinical development in months.

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