CpG/Poly (I:C) mixed adjuvant priming enhances the immunogenicity of a DNA vaccine against eastern equine encephalitis virus in mice
INTERNATIONAL IMMUNOPHARMACOLOGY
Authors: Ma, JinZhu; Wang, HuaLei; Zheng, XueXing; Xue, XiangHong; Wang, BeiYan; Wu, HongXia; Zhang, Kun; Fan, ShengTao; Wang, TieCheng; Li, Nan; Zhao, YongKun; Gao, YuWei; Yang, SongTao; Xia, XianZhu
Abstract
Eastern equine encephalitis virus (EEEV) poses a serious public health threat in many countries. Therefore, developing efficient vaccine against EEEV remains an important challenge in the field of disease control. To identify immunogenic proteins in EEEV, we constructed an expression vector containing the protein coding genes C, E3, E2, 6k, and E1 (pcDNA3.1-C-E). After verifying the target gene expression in 293 T cells, we immunized BALB/c mice with the pcDNA3.1-C-E vector as a DNA vaccine in conjunction with either CpG or poly (I:C) or a mixture of both adjuvants and monitored various aspects of the immune response. After two immunizations, the mice vaccinated with antigen plus mixed CpG/poly (I:C) adjuvant exhibited significantly stronger IFN-gamma responses and generated high-level CD4(+) cell responses for the cytokines IL-2, IL-4, and IFN-gamma and CD8(+) T cell responses for the cytokines IL-2 and IFN-gamma compared to the mice vaccinated with the corresponding antigen plus CpG or poly (I:C) alone. In addition, the higher antibody titers against EEEV effectively neutralized the EEEV pseudoviruses in the group immunized with antigen plus mixed CpG/poly (I:C) adjuvant after tertiary immunization. This study demonstrates that the pcDNA3.1-C-E plasmids in conjunction with mixed CpG/poly (I:C) adjuvant priming maximize the cellular immune response and specific antibody generation in mice. Moreover, this mixed adjuvant priming provides a promising strategy for enhancing the immune effectiveness of a DNA vaccine against EEEV. (C) 2014 Elsevier B.V. All rights reserved.
A vaccine candidate for eastern equine encephalitis virus based on IRES-mediated attenuation
VACCINE
Authors: Pandya, Jyotsna; Gorchakov, Rodion; Wang, Eryu; Leal, Grace; Weaver, Scott C.
Abstract
To develop an effective vaccine against eastern equine encephalitis (FEE), we engineered a recombinant EEE virus (EEEV) that was attenuated and capable of replicating only in vertebrate cells, an important safety feature for live vaccines against mosquito-borne viruses. The subgenomic promoter was inactivated with 13 synonymous mutations and expression of the EEEV structural proteins was placed under the control of an internal ribosomal entry site (IRES) derived from encephalomyocarditis virus (EMCV). We tested this vaccine candidate for virulence, viremia and efficacy in the murine model. A single subcutaneous immunization with 104 infectious units protected 100% of mice against intraperitoneal challenge with a highly virulent North American EEEV strain. None of the mice developed any signs of disease or viremia after immunization or following challenge. Our findings suggest that the IRES-based attenuation approach can be used to develop a safe and effective vaccine against EEE and other alphaviral diseases. (C) 2012 Elsevier Ltd. All rights reserved.