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用于推进疫苗开发的快速合成修饰安卡拉痘苗病毒反向遗传学系统的设计与构建。

Design and construction of a fast synthetic modified vaccinia virus Ankara reverse genetics system for advancing vaccine development.

作者信息

Gao Zhiqiang, Wang Busen, Liu Tianyu, Zhao Zhenghao, Xu Jinghan, Zhao Xiaofan, Zhang Zhe, Jia Zuyuan, Yang Yilong, Wu Shipo, Chen Wei, Hou Lihua

机构信息

Laboratory of Advanced Biotechnology, Beijing Institute of Biotechnology, Beijing, China.

出版信息

Front Microbiol. 2025 Apr 25;16:1572706. doi: 10.3389/fmicb.2025.1572706. eCollection 2025.

Abstract

The modified vaccinia virus Ankara (MVA) is approved for use as a smallpox and monkeypox virus vaccine and was also designed as a popular recombinant viral vector for vaccine development and gene therapy. However, the extensive genomes of poxviruses present a significant challenge for the development of recombinant viral vaccines; therefore, it is essential to establish a user-friendly reverse genetic system. We systematically assembled the 180-kb MVA genome into a five-plasmid system, facilitating one-step packaging of the MVA virus. The MVA rescued using this system exhibited similar virological characteristics, including host cell tropism, growth kinetics, plaque size, and viral particles, comparable to those of wild-type MVA. Immunization with rescued MVA intramuscularly or subcutaneously triggered robust-specific immune responses and conferred protection against lethal attacks by the ectromelia virus in mice. We also developed a recombinant MVA-Luc-eGFP virus, which served as a tool for screening antiviral compounds against poxviruses. The synthetic MVA system efficiently generates recombinant vaccines with robust immune responses. These findings provide a novel and fast method for engineering large viral genomes with more specialized structures and lay a foundation for the advancement of more rapid and effective viral vector vaccines.

摘要

改良安卡拉痘苗病毒(MVA)被批准用作天花和猴痘病毒疫苗,并且还被设计成为一种用于疫苗开发和基因治疗的常用重组病毒载体。然而,痘病毒庞大的基因组对重组病毒疫苗的开发构成了重大挑战;因此,建立一个用户友好的反向遗传系统至关重要。我们将180kb的MVA基因组系统地组装成一个五质粒系统,便于MVA病毒的一步包装。使用该系统拯救的MVA表现出与野生型MVA相似的病毒学特征,包括宿主细胞嗜性、生长动力学、蚀斑大小和病毒颗粒。肌肉注射或皮下注射拯救的MVA免疫可引发强烈的特异性免疫反应,并使小鼠免受埃可病毒致死性攻击。我们还开发了一种重组MVA-Luc-eGFP病毒,作为筛选抗痘病毒化合物的工具。合成MVA系统能有效地产生具有强大免疫反应的重组疫苗。这些发现为构建具有更特殊结构的大型病毒基因组提供了一种新颖且快速的方法,并为开发更快速有效的病毒载体疫苗奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/98ef/12061933/b78a5ab839a5/fmicb-16-1572706-g001.jpg

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