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脂质纳米颗粒作为诺如病毒VLP疫苗的佐剂,通过TLR9和I型干扰素依赖性途径增强细胞免疫和体液免疫反应。

Lipid nanoparticles as adjuvant of norovirus VLP vaccine augment cellular and humoral immune responses in a TLR9- and type I IFN-dependent pathway.

作者信息

Dai Weiqian, Xing Man, Sun Lingjin, Lv Lihui, Wang Xiang, Wang Yihan, Pang Xueyang, Guo Yingying, Ren Jiling, Zhou Dongming

机构信息

Department of Pathogen Biology, Basic Medical College, Tianjin Medical University, Tianjin, China.

Shanghai Public Health Clinical Center, Fudan University, Shanghai, China.

出版信息

J Virol. 2024 Dec 17;98(12):e0169924. doi: 10.1128/jvi.01699-24. Epub 2024 Nov 4.

Abstract

Norovirus (NoV) virus-like particles (VLPs) adjuvanted with aluminum hydroxide (Alum) are common vaccine candidates in clinical studies. Alum adjuvants usually inefficiently assist recombinant proteins to induce cellular immune responses. Thus, novel adjuvants are required to develop NoV vaccines that could induce both efficient humoral and robust cellular immune responses. Lipid nanoparticles (LNPs) are well-known mRNA delivery vehicles. Increasing evidence suggests that LNPs may have intrinsic adjuvant activity and can be used as adjuvants for recombinant protein vaccines; however, the underlying mechanism remains poorly understood. In this study, we compared the adjuvant effect of LNPs and Alum for a bivalent GI.1/GII.4 NoV VLP vaccine. Compared with Alum, LNP-adjuvanted vaccines induced earlier production of binding, blocking, and neutralizing antibodies and promoted a more balanced IgG2a/IgG1 ratio. It is crucial that LNP-adjuvanted vaccines induced stronger Th1-type cytokine-producing CD4 T cell and CD8 T cell responses than Alum. The adjuvant activity of LNPs depended on the ionizable lipid components. Mechanistically, LNPs activated innate immune responses in a type I IFN-dependent manner and were partially dependent on Toll-like receptor (TLR) 9, thus affecting the adaptive immune responses of the vaccine. This conclusion was supported by RNA-seq analysis and cell experiments and by the deeply blunted T cell responses in IFNαR1 mice immunized with LNP-adjuvanted vaccines. This study not only identified LNPs as a high quality adjuvant for NoV VLP vaccines, but also clarified the underlying mechanism of LNPs as a potent immunostimulatory component for improving protein subunit vaccines.IMPORTANCEWith the rapid development of mRNA vaccines, recurrent studies show that lipid nanoparticles (LNPs) have adjuvant activity. However, the mechanism of its adjuvant effect in protein vaccines remains unknown. In this study, we found that the LNP-adjuvanted norovirus bivalent virus-like particle vaccines led to durable antibody responses as well as Th1-type cytokine-producing CD4 T cell and CD8 T cell responses, which exceeded the efficiency of the conventional adjuvant aluminum hydroxide. Mechanistically, LNPs activated innate immune responses in a type I IFN-dependent manner and were partially dependent on Toll-like receptor 9, thus affecting the adaptive immune responses of the vaccine. This work unveils that LNPs as a potent immunostimulatory component may be ideal for generating CD8 T cell and B cell responses for recombinant protein vaccines.

摘要

氢氧化铝(明矾)佐剂的诺如病毒(NoV)病毒样颗粒(VLP)是临床研究中常见的候选疫苗。明矾佐剂通常不能有效地辅助重组蛋白诱导细胞免疫反应。因此,需要新型佐剂来开发能够诱导高效体液免疫和强大细胞免疫反应的NoV疫苗。脂质纳米颗粒(LNP)是众所周知的mRNA递送载体。越来越多的证据表明,LNP可能具有内在佐剂活性,可作为重组蛋白疫苗的佐剂;然而,其潜在机制仍知之甚少。在本研究中,我们比较了LNP和明矾对二价GI.1/GII.4 NoV VLP疫苗的佐剂效果。与明矾相比,LNP佐剂疫苗诱导产生结合、阻断和中和抗体的时间更早,并促进了更平衡的IgG2a/IgG1比值。至关重要的是,LNP佐剂疫苗诱导产生的产生Th1型细胞因子的CD4 T细胞和CD8 T细胞反应比明矾更强。LNP的佐剂活性取决于可电离脂质成分。从机制上讲,LNP以I型干扰素依赖性方式激活先天免疫反应,部分依赖于Toll样受体(TLR)9,从而影响疫苗的适应性免疫反应。RNA测序分析、细胞实验以及用LNP佐剂疫苗免疫的IFNαR1小鼠中深度减弱的T细胞反应支持了这一结论。本研究不仅确定LNP是NoV VLP疫苗的优质佐剂,还阐明了LNP作为一种有效的免疫刺激成分改善蛋白质亚单位疫苗的潜在机制。

重要性

随着mRNA疫苗的快速发展,反复研究表明脂质纳米颗粒(LNP)具有佐剂活性。然而,其在蛋白质疫苗中的佐剂作用机制仍不清楚。在本研究中,我们发现LNP佐剂的诺如病毒二价病毒样颗粒疫苗可产生持久的抗体反应以及产生Th1型细胞因子的CD4 T细胞和CD8 T细胞反应,其效率超过了传统佐剂氢氧化铝。从机制上讲,LNP以I型干扰素依赖性方式激活先天免疫反应,部分依赖于Toll样受体9,从而影响疫苗的适应性免疫反应。这项工作揭示,LNP作为一种有效的免疫刺激成分,可能是为重组蛋白疫苗产生CD8 T细胞和B细胞反应的理想选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66e2/11650981/13532921a5e4/jvi.01699-24.f001.jpg

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