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Ag85A 疫苗的作用机制是通过新的信号转导激活 RNA 传感器。

The mechanisms of Ag85A DNA vaccine activates RNA sensors through new signal transduction.

机构信息

Department of Immunology, China Medical University, Shenyang 110122, China; Brucellosis Institute of Inner Mongolia University for the Nationalities, Tongliao 028000, China.

Department of Immunology, China Medical University, Shenyang 110122, China.

出版信息

Int Immunopharmacol. 2018 Jun;59:1-11. doi: 10.1016/j.intimp.2017.11.041. Epub 2018 Mar 30.

Abstract

Low immunogenicity is one of the major problems limiting the clinical use for DNA vaccines, which makes it impossible to obtain a strong protective immune response after vaccination. In order to explore whether Ag85A DNA vaccine could mount more efficiently protective immune response through new RNA sensor and its signal transduction pathway of antigen presentation we designed and synthesized Ag85A gene fragment containing multiple points mutations and transfected the gene fragment into the dendritic cell line (DC2.4) by CRISPR/Cas9. Subsequently, we focused on the changes of RNA sensors RIG-I, Mda-5, and the downstream adaptors MAVS, IRF3, IRF7 and IFN-β. The results indicated the significant increases in the mRNA and protein expression of RNA sensors RIG-I, Mda-5 and related adaptors MAVS, IRF3, IRF7, and IFN-β in the mutant DC 2.4 cells. The flow cytometry results demonstrated that the expression of MHC II on the surface of DC 2.4 significantly increased when compared with that in control. Therefore, it is suggested that Ag85A mutant DNA could release immunogenic message through RNA sensors and related adaptors via non protein pathway. There is at least one RNA signal transduction pathway of Ag85A DNA in DC2.4 cell. The work provides a new mode of action for nucleic acid vaccine to improve immunogenicity and meaningful data for the better understanding of the mechanisms of DNA vaccine.

摘要

低免疫原性是限制 DNA 疫苗临床应用的主要问题之一,这使得接种后无法获得强烈的保护性免疫反应。为了探索 Ag85A DNA 疫苗是否可以通过新的 RNA 传感器及其抗原呈递的信号转导途径更有效地产生保护性免疫反应,我们设计并合成了含有多个点突变的 Ag85A 基因片段,并通过 CRISPR/Cas9 将该基因片段转染到树突状细胞系(DC2.4)中。随后,我们专注于 RNA 传感器 RIG-I、Mda-5 及其下游衔接子 MAVS、IRF3、IRF7 和 IFN-β 的变化。结果表明,突变型 DC2.4 细胞中 RNA 传感器 RIG-I、Mda-5 和相关衔接子 MAVS、IRF3、IRF7 和 IFN-β 的 mRNA 和蛋白表达显著增加。流式细胞术结果表明,与对照组相比,DC2.4 表面 MHC II 的表达显著增加。因此,Ag85A 突变型 DNA 可能通过 RNA 传感器和相关衔接子通过非蛋白途径释放免疫原性信息。在 DC2.4 细胞中至少存在一条 Ag85A DNA 的 RNA 信号转导途径。该工作为提高核酸疫苗的免疫原性提供了一种新的作用模式,为更好地理解 DNA 疫苗的作用机制提供了有意义的数据。

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