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Intranasal Administration of Recombinant Influenza Vaccines in Chimeric Mouse Models to Study Mucosal Immunity
Published on: June 25, 2015
Engineered bacteriophage nanoassemblies in vivo stabilize DC-T cell immune synapse for high-performance influenza
Yinhe Xia1, Zhou Xu2, Ruilong Song3
1Shandong Provincial Key Medical and Health Laboratory of Neuro-oncology of Innovative Integrated Medicine, Qingdao Central Hospital, University of Health and Rehabilitation Sciences, Qingdao, 266042, China; School of Rehabilitation Sciences and Engineering, University of Health and Rehabilitation Sciences, Qingdao, 266113, China; Institute of Comparative Medicine, College of Veterinary Medicine, Yangzhou University, Yangzhou, 225009, China; State Key Laboratory on Technologies for Chinese Medicine Pharmaceutical Process Control and Intelligent Manufacture, Nanjing University of Chinese Medicine, Nanjing, 210023, China; Taicang TCM Hospital Affiliated to Nanjing University of Chinese Medicine, Taicang, 215499, China.
Abstract:
T cell activation by dendritic cells (DCs) requires the formation of a stable immune synapse (IS). The objective of this study was to develop a vaccination approach by targetedly regulating DC-T cell synaptic interactions in vivo. We constructed bacteriophage nanoassemblies to deliver antigen-encoding sequences into DC cytoplasm and enhance DC-T cell IS stability in vivo, thereby boosting vaccine potency. Specifically, influenza hemagglutinin stem gene was inserted into the genome and DC-targeting peptide was fused to the sidewall of bacteriophages. Then, bacteriophages acted as surfactants to cover hydrophobic particles, within which sodium/proton pump inhibitors were encapsulated to regulate intercellular adhesion molecule 1 (ICAM-1) membrane positioning for stabilizing IS. The size-controlled nanoassemblies inhibited internalization of ICAM-1 via activating the NF-κB, PI3K-AKT, and RhoA-ROCK signaling pathways. Immunization with the nanoassemblies triggered robust T cell and antibody responses against influenza virus, leading to complete protection and long-term immune memory in infected mice. In sum, our results highlight the feasibility for improving vaccine protective potency via targeted enhancement of the IS stability between DCs and T cells in vivo. Given their flexibility and commonality, the bacteriophage nanoassemblies can be readily tailored for the development of various vaccine formulations against other pathogens.

