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基于近场光学显微镜和原子力显微镜的纳米技术揭示了一种能够引发强烈反应的含鼠疫耶尔森氏菌V免疫原颗粒疫苗的纳米结构和原子力特征。

NSOM- and AFM-based nanotechnology elucidates nano-structural and atomic-force features of a Y. pestis V immunogen-containing particle vaccine capable of eliciting robust response.

作者信息

Zeng Gucheng, Chen Jianbo, Zhong Liyun, Wang Richard, Jiang Lifang, Cai Jiye, Yan Lin, Huang Dan, Chen Crystal Y, Chen Zheng W

机构信息

Department of Microbiology and Immunology, University of Illinois, Chicago, IL 60612, USA.

出版信息

Proteomics. 2009 Mar;9(6):1538-47. doi: 10.1002/pmic.200800528.

Abstract

It is postulated that unique nanoscale proteomic features of immunogen on vaccine particles may determine immunogen-packing density, stability, specificity, and pH-sensitivity on the vaccine particle surface and thus impact the vaccine-elicited immune responses. To test this presumption, we employed near-filed scanning optical microscopy (NSOM)- and atomic force microscopy (AFM)-based nanotechnology to study nano-structural and single-molecule force bases of Yersinia pestis (Y. pestis) V immunogen fused with protein anchor (V-PA) loaded on gram positive enhancer matrix (GEM) vaccine particles. Surprisingly, the single-molecule sensitive NSOM revealed that approximately 90% of V-PA immunogen molecules were packed as high-density nanoclusters on GEM particle. AFM-based single-molecule force analyses indicated a highly stable and specific binding between V-PA and GEM at the physiological pH. In contrast, this specific binding was mostly abrogated at the acidic pH equivalent to the biochemical pH in phagolysosomes of antigen-presenting-cells in which immunogen protein is processed for antigen presentation. Intranasal mucosal vaccination of mice with such immunogen loaded on vaccine particles elicited robust antigen-specific immune response. This study indicated that high-density, high-stability, specific, and immunological pH-responsive loading of immunogen nanoclusters on vaccine particles could readily be presented to the immune system for induction of strong antigen-specific immune responses.

摘要

据推测,疫苗颗粒上免疫原独特的纳米级蛋白质组学特征可能决定免疫原的包装密度、稳定性、特异性以及疫苗颗粒表面的pH敏感性,从而影响疫苗引发的免疫反应。为了验证这一推测,我们采用基于近场扫描光学显微镜(NSOM)和原子力显微镜(AFM)的纳米技术,研究负载于革兰氏阳性增强基质(GEM)疫苗颗粒上的与蛋白锚融合的鼠疫耶尔森菌(Y. pestis)V免疫原(V-PA)的纳米结构和单分子力基础。令人惊讶的是,单分子敏感的NSOM显示,约90%的V-PA免疫原分子以高密度纳米簇的形式包装在GEM颗粒上。基于AFM的单分子力分析表明,在生理pH条件下,V-PA与GEM之间存在高度稳定且特异的结合。相比之下,在与抗原呈递细胞吞噬溶酶体中免疫原蛋白进行抗原呈递处理时的生化pH相当的酸性pH条件下,这种特异性结合大多被消除。用负载有此类免疫原的疫苗颗粒对小鼠进行鼻内黏膜接种引发了强烈的抗原特异性免疫反应。这项研究表明,免疫原纳米簇在疫苗颗粒上的高密度、高稳定性、特异性以及免疫pH响应性负载能够很容易地呈现给免疫系统,以诱导强烈的抗原特异性免疫反应。

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