Institute of Bioengineering, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.
Institute of Bioengineering, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland; Institute for Molecular Engineering, University of Chicago, Chicago, IL, USA.
Biomaterials. 2017 Jul;132:48-58. doi: 10.1016/j.biomaterials.2017.03.047. Epub 2017 Mar 30.
Nanoparticle delivery systems are known to enhance the immune response to soluble antigens (Ags) and are thus a promising tool for the development of new vaccines. Our laboratory has engineered two different nanoparticulate systems in which Ag is either encapsulated within the core of polymersomes (PSs) or decorated onto the surface of nanoparticles (NPs). Previous studies showed that PSs are better at enhancing CD4 T cells and antibody titers, while NPs preferentially augment cytotoxic CD8 T cells. Herein, we demonstrate that the differential activation of T cell immunity reflects differences in the modes of intracellular trafficking and distinct biodistribution of the Ag in lymphoid organs, which are both driven by the properties of each nanocarrier. Furthermore, we found that Ags within PSs promoted better CD4 T cell activation and induced a higher frequency of CD4 T follicular helper (Tfh) cells. These differences correlated with changes in the frequency of germinal center B cells and plasma cell formation, which reflects the previously observed antibody titers. Our results show that PSs are a promising vector for the delivery of Ags for B cell vaccine development. This study demonstrates that nanocarrier design has a large impact on the quality of the induced adaptive immune response.
纳米颗粒递送系统已知可增强对可溶性抗原 (Ags) 的免疫应答,因此是开发新型疫苗的有前途的工具。我们的实验室已经设计了两种不同的纳米颗粒系统,其中 Ag 被包裹在聚合物囊泡 (PSs) 的核心内或修饰在纳米颗粒 (NPs) 的表面上。先前的研究表明,PSs 更擅长增强 CD4 T 细胞和抗体滴度,而 NPs 则优先增强细胞毒性 CD8 T 细胞。在此,我们证明 T 细胞免疫的差异激活反映了 Ag 在淋巴器官中的细胞内转运方式和不同分布的差异,这两者均由每个纳米载体的特性驱动。此外,我们发现 PS 内的 Ag 促进了更好的 CD4 T 细胞激活,并诱导了更高频率的 CD4 T 滤泡辅助 (Tfh) 细胞。这些差异与生发中心 B 细胞和浆细胞形成的频率变化相关,这反映了之前观察到的抗体滴度。我们的结果表明 PSs 是用于 B 细胞疫苗开发的 Ag 递呈的有前途的载体。本研究表明,纳米载体设计对诱导适应性免疫应答的质量有很大影响。