Literature DB >> 24962757

Squalene-adjuvanted H7N9 virus vaccine induces robust humoral immune response against H7N9 and H7N7 viruses.

Chia-Ying Wu1, Ching-Yuan Chang1, Hsiu-Hua Ma2, Chiung-Wen Wang1, Yung-Tsung Chen1, Pei-Wen Hsiao3, Ching-Chuan Chang1, Chi-Hsien Chan1, Chung-Cheng Liu1, Juine-Ruey Chen4.   

Abstract

Recent cases of avian influenza H7N9 have caused great concerns that virus may become transmittable between humans. It is imperative to develop an effective vaccine to fight against the pandemic potential of this H7N9 influenza virus to protect human from the disease. This study aims to investigate an optimized formulation for the development of H7N9 vaccines. Various doses of H7N9 inactivated whole or split-virus antigens (0.5, 1.5, or 3 μg based on hemagglutinin content) combined with squalene-based adjuvant (AddaVAX), aluminum hydroxide Al(OH)3 or without adjuvant were evaluated for the efficacy of H7N9 vaccine regiments in mice. With either H7N9 whole or split-virus based vaccines, AddaVAX-adjuvanted formulations were the most immunogenic in eliciting significant humoral immune response against H7N9 virus and exhibited strong cross-reactive response in hemagglutination inhibition (HAI) and viral-neutralization assays against H7N7 virus as well. In contrast, formulations with Al(OH)3 or without adjuvant were less immunogenic and elicited lower titers of HAI and microneutralization assays against both viruses. Dose-sparing experiments suggested that the formulation with as low as 0.004 μg of split or whole virus vaccine antigens together with 50% AddaVAX provided sufficient sero-protective HAI titers and achieved essential virus-neutralizing antibody titers against H7-subtype influenza viruses in mice. Protection experiments demonstrated that the formulation of 0.004 μg to 0.5 μg of split-virion vaccines with AddaVAX conferred full protection against viral challenge up to 100 LD50 of wild-type H7N9 virus, with 0% survival in placebo group. Taken together, our study demonstrates that squalene-based adjuvant can significantly enhance the protective efficacy of H7N9 virus vaccine and provides a useful strategy to confront the potential pandemic outbreaks of H7N9 virus.
Copyright © 2014 The Authors. Published by Elsevier Ltd.. All rights reserved.

Entities:  

Keywords:  Adjuvant; H7N7; H7N9; Humoral immune response; Inactivated virus vaccine; Pandemic influenza

Mesh:

Substances:

Year:  2014        PMID: 24962757     DOI: 10.1016/j.vaccine.2014.06.043

Source DB:  PubMed          Journal:  Vaccine        ISSN: 0264-410X            Impact factor:   3.641


  12 in total

1.  Comparative Study on the Efficacy of MF 59, ISA70 VG, and Nano-Aluminum Hydroxide Adjuvants, Alone and with Nano-Selenium on Humoral Immunity Induced by a Bivalent Newcastle+Avian Influenza Vaccine in Chickens.

Authors:  M Radmehri; A Talebi; A Ameghi Roudsari; S M Mousaviyan; M A J Gholipour; M Taghizadeh
Journal:  Arch Razi Inst       Date:  2021-11-30

2.  Immunogenicity and protective efficacy of a Vero cell culture-derived whole-virus H7N9 vaccine in mice and guinea pigs.

Authors:  Walter Wodal; Michael G Schwendinger; Helga Savidis-Dacho; Brian A Crowe; Christine Hohenadl; Richard Fritz; Peter Brühl; Daniel Portsmouth; Anita Karner-Pichl; Dalida Balta; Leopold Grillberger; Otfried Kistner; P Noel Barrett; M Keith Howard
Journal:  PLoS One       Date:  2015-02-26       Impact factor: 3.240

3.  Obesity Outweighs Protection Conferred by Adjuvanted Influenza Vaccination.

Authors:  Erik A Karlsson; Tomer Hertz; Cydney Johnson; Andrew Mehle; Florian Krammer; Stacey Schultz-Cherry
Journal:  MBio       Date:  2016-08-02       Impact factor: 7.867

4.  Aluminum salts as an adjuvant for pre-pandemic influenza vaccines: a meta-analysis.

Authors:  Yu-Ju Lin; Yun-Jui Shih; Chang-Hsun Chen; Chi-Tai Fang
Journal:  Sci Rep       Date:  2018-07-30       Impact factor: 4.379

5.  The adjuvant AlhydroGel elicits higher antibody titres than AddaVax when combined with HIV-1 subtype C gp140 from CAP256.

Authors:  Michiel T van Diepen; Rosamund Chapman; Penny L Moore; Emmanuel Margolin; Tandile Hermanus; Lynn Morris; Phindile Ximba; Edward P Rybicki; Anna-Lise Williamson
Journal:  PLoS One       Date:  2018-12-17       Impact factor: 3.240

6.  Characterization of Humoral Responses Induced by an H7N9 Influenza Virus-Like Particle Vaccine in BALB/C Mice.

Authors:  Li Zhang; Jing Lu; Yin Chen; Fengjuan Shi; Huiyan Yu; Chao Huang; Lunbiao Cui; Zhiyang Shi; Yongjun Jiao; Yuemei Hu
Journal:  Viruses       Date:  2015-08-04       Impact factor: 5.048

Review 7.  Emerging Influenza Strains in the Last Two Decades: A Threat of a New Pandemic?

Authors:  Claudia Trombetta; Simona Piccirella; Daniele Perini; Otfried Kistner; Emanuele Montomoli
Journal:  Vaccines (Basel)       Date:  2015-03-18

8.  Characterization of Influenza Vaccine Hemagglutinin Complexes by Cryo-Electron Microscopy and Image Analyses Reveals Structural Polymorphisms.

Authors:  Dustin M McCraw; John R Gallagher; Audray K Harris
Journal:  Clin Vaccine Immunol       Date:  2016-06-06

9.  Antibody Immunity Induced by H7N9 Avian Influenza Vaccines: Evaluation Criteria, Affecting Factors, and Implications for Rational Vaccine Design.

Authors:  Zenglei Hu; Xinan Jiao; Xiufan Liu
Journal:  Front Microbiol       Date:  2017-09-26       Impact factor: 5.640

10.  Development of high-growth influenza H7N9 prepandemic candidate vaccine viruses in suspension MDCK cells.

Authors:  Tsai-Teng Tzeng; Po-Ling Chen; Tsai-Chuan Weng; Shin-Yi Tsai; Chia-Chun Lai; Hsin-I Chou; Pin-Wen Chen; Chia-Chun Lu; Ming-Tsan Liu; Wang-Chou Sung; Min-Shi Lee; Alan Yung-Chih Hu
Journal:  J Biomed Sci       Date:  2020-04-02       Impact factor: 8.410

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.