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RNAi 抑制水稻内源储存蛋白可提高基于水稻的肉毒杆菌神经毒素 A 型疫苗的产量。

RNAi suppression of rice endogenous storage proteins enhances the production of rice-based Botulinum neutrotoxin type A vaccine.

机构信息

Division of Mucosal Immunology, Department of Microbiology and Immunology, The Institute of Medical Science, The University of Tokyo, Tokyo, 108-8639, Japan.

出版信息

Vaccine. 2012 Jun 13;30(28):4160-6. doi: 10.1016/j.vaccine.2012.04.064. Epub 2012 May 1.

DOI:10.1016/j.vaccine.2012.04.064
PMID:22554467
Abstract

Mucosal vaccines based on rice (MucoRice) offer a highly practical and cost-effective strategy for vaccinating large populations against mucosal infections. However, the limitation of low expression and yield of vaccine antigens with high molecular weight remains to be overcome. Here, we introduced RNAi technology to advance the MucoRice system by co-introducing antisense sequences specific for genes encoding endogenous rice storage proteins to minimize storage protein production and allow more space for the accumulation of vaccine antigen in rice seed. When we used RNAi suppression of a combination of major rice endogenous storage proteins, 13 kDa prolamin and glutelin A in a T-DNA vector, we could highly express a vaccine comprising the 45 kDa C-terminal half of the heavy chain of botulinum type A neurotoxin (BoHc), at an average of 100 μg per seed (MucoRice-BoHc). The MucoRice-Hc was water soluble, and was expressed in the cytoplasm but not in protein body I or II of rice seeds. Thus, our adaptation of the RNAi system improved the yield of a vaccine antigen with a high molecular weight. When the mucosal immunogenicity of the purified MucoRice-BoHc was examined, the vaccine induced protective immunity against a challenge with botulinum type A neurotoxin in mice. These findings demonstrate the efficiency and utility of the advanced MucoRice system as an innovative vaccine production system for generating highly immunogenic mucosal vaccines of high-molecular-weight antigens.

摘要

基于水稻的黏膜疫苗(MucoRice)为针对黏膜感染对大量人群进行疫苗接种提供了一种非常实用且具有成本效益的策略。然而,具有高分子量的疫苗抗原的低表达和产量仍然是需要克服的限制。在这里,我们引入 RNAi 技术通过共引入针对编码内源性水稻贮藏蛋白的基因的反义序列来推进 MucoRice 系统,以最大程度地减少贮藏蛋白的产生并为疫苗抗原在水稻种子中的积累留出更多空间。当我们在 T-DNA 载体中使用 RNAi 抑制主要的水稻内源性贮藏蛋白(13 kDa 醇溶蛋白和谷蛋白 A)的组合时,我们可以在每个种子中平均以 100 μg 的量高度表达包含 A 型肉毒神经毒素(BoHc)重链的 45 kDa C 端一半的疫苗(MucoRice-BoHc)。MucoRice-Hc 是水溶性的,并且在细胞质中表达,而不在水稻种子的 I 或 II 型蛋白体中表达。因此,我们对 RNAi 系统的适应性改进了具有高分子量的疫苗抗原的产量。当检查纯化的 MucoRice-BoHc 的黏膜免疫原性时,该疫苗在小鼠中诱导了针对 A 型肉毒神经毒素的保护免疫。这些发现证明了先进的 MucoRice 系统作为产生高免疫原性黏膜疫苗的创新疫苗生产系统的效率和实用性,这些疫苗针对高分子量抗原。

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