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Investigating the Impact of Delivery System Design on the Efficacy of Self-Amplifying RNA Vaccines

机译:研究传递系统设计对自扩增RNA疫苗功效的影响

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摘要

messenger RNA (mRNA)-based vaccines combine the positive attributes of both live-attenuated and subunit vaccines. In order for these to be applied for clinical use, they require to be formulated with delivery systems. However, there are limited in vivo studies which compare different delivery platforms. Therefore, we have compared four different cationic platforms: (1) liposomes, (2) solid lipid nanoparticles (SLNs), (3) polymeric nanoparticles (NPs) and (4) emulsions, to deliver a self-amplifying mRNA (SAM) vaccine. All formulations contained either the non-ionizable cationic lipid 1,2-dioleoyl-3-trimethylammonium-propane (DOTAP) or dimethyldioctadecylammonium bromide (DDA) and they were characterized in terms of physico-chemical attributes in vitro transfection efficiency and in vivo vaccine potency. Our results showed that SAM encapsulating DOTAP polymeric nanoparticles, DOTAP liposomes and DDA liposomes induced the highest antigen expression in vitro and, from these, DOTAP polymeric nanoparticles were the most potent in triggering humoral and cellular immunity among candidates in vivo.
机译:基于信使RNA(mRNA)的疫苗结合了减毒活疫苗和亚单位疫苗的积极特性。为了将它们用于临床,它们需要与递送系统一起配制。然而,在体内研究中比较不同递送平台的研究有限。因此,我们比较了四种不同的阳离子平台:(1)脂质体,(2)固体脂质纳米颗粒(SLN),(3)聚合物纳米颗粒(NPs)和(4)乳液,以提供自扩增mRNA(SAM)疫苗。所有制剂均包含不可电离的阳离子脂质1,2-二油酰基-3-三甲基铵-丙烷(DOTAP)或二甲基二十八烷基溴化铵(DDA),并根据理化特性进行了体外转染效率和体内疫苗效力的表征。我们的结果表明,SAM封装的DOTAP聚合物纳米颗粒,DOTAP脂质体和DDA脂质体在体外诱导了最高的抗原表达,从这些方面,DOTAP聚合物纳米颗粒在体内候选者中最能激发体液和细胞免疫。

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