Quan Fu-Shi, Basak Swarnendu, Chu Ki-Back, Kim Sung Soo, Kang Sang-Moo
Department of Medical Zoology, Kyung Hee University School of Medicine, Seoul, Republic of Korea.
Medical Research Center for Bioreaction to Reactive Oxygen Species and Biomedical Science Institute, School of Medicine, Graduate school, Kyung Hee University, Seoul, Republic of Korea.
Expert Rev Vaccines. 2020 Jan;19(1):11-24. doi: 10.1080/14760584.2020.1711053. Epub 2020 Jan 18.
: Influenza virus, human respiratory syncytial virus (RSV), and human metapneumovirus (HMPV) are important human respiratory pathogens. Recombinant virus-like particle (VLP) vaccines are suggested to be potential promising platforms to protect against these respiratory viruses. This review updates important progress in the development of VLP vaccines against respiratory viruses.: This review summarizes progress in developing VLP and nanoparticle-based vaccines against influenza virus, RSV, and HMPV. The PubMed was mainly used to search for important research articles published since 2010 although earlier key articles were also referenced. The research area covered includes VLP and nanoparticle platform vaccines against seasonal, pandemic, and avian influenza viruses as well as RSV and HMPV respiratory viruses. The production methods, immunogenic properties, and vaccine efficacy of respiratory VLP vaccines in preclinical animal models and clinical studies were reviewed in this article.: Previous and current preclinical and clinical studies suggest that recombinant VLP and nanoparticle vaccines are expected to be developed as promising alternative platforms against respiratory viruses in future. Therefore, continued research efforts are warranted.
流感病毒、人呼吸道合胞病毒(RSV)和人偏肺病毒(HMPV)是重要的人类呼吸道病原体。重组病毒样颗粒(VLP)疫苗被认为是预防这些呼吸道病毒的潜在有前景的平台。本综述更新了抗呼吸道病毒VLP疫苗研发的重要进展。:本综述总结了开发针对流感病毒、RSV和HMPV的基于VLP和纳米颗粒的疫苗的进展。主要使用PubMed搜索自2010年以来发表的重要研究文章,不过也参考了早期的关键文章。涵盖的研究领域包括针对季节性、大流行性和禽流感病毒以及RSV和HMPV呼吸道病毒的VLP和纳米颗粒平台疫苗。本文综述了呼吸道VLP疫苗在临床前动物模型和临床研究中的生产方法、免疫原性和疫苗效力。:以往和当前的临床前及临床研究表明,重组VLP和纳米颗粒疫苗有望在未来作为抗呼吸道病毒的有前景替代平台进行开发。因此,有必要继续进行研究。