Iterative structure-based improvement of a fusion-glycoprotein vaccine against RSV

毛皮 糖蛋白 抗原 病毒学 二硫键 计算生物学 化学 疫苗效力 效价 融合蛋白 病毒 生物 重组DNA 接种疫苗 免疫学 生物化学 基因
作者
Michael Joyce,Baoshan Zhang,Li Ou,Man Chen,Gwo‐Yu Chuang,Aliaksandr Druz,Wing‐Pui Kong,Yen‐Ting Lai,Emily J. Rundlet,Yaroslav Tsybovsky,Yongping Yang,Ivelin S. Georgiev,Miklós Guttman,Christopher R. Lees,Marie Pancera,Mallika Sastry,Cinque Soto,Guillaume B. E. Stewart-Jones,Paul V. Thomas,Joseph G. Van Galen,Ulrich Baxa,Kelly K. Lee,John R. Mascola,Barney S. Graham,Peter D. Kwong
出处
期刊:Nature Structural & Molecular Biology [Springer Nature]
卷期号:23 (9): 811-820 被引量:134
标识
DOI:10.1038/nsmb.3267
摘要

An interactive structure-based approach was used to improve a vaccine antigen against respiratory syncytium virus (RSV), thus leading to immunogens with higher stability that elicit higher neutralizing titers in mice. Structure-based design of vaccines, particularly the iterative optimization used so successfully in the structure-based design of drugs, has been a long-sought goal. We previously developed a first-generation vaccine antigen called DS-Cav1, comprising a prefusion-stabilized form of the fusion (F) glycoprotein, which elicits high-titer protective responses against respiratory syncytial virus (RSV) in mice and macaques. Here we report the improvement of DS-Cav1 through iterative cycles of structure-based design that significantly increased the titer of RSV-protective responses. The resultant second-generation 'DS2'-stabilized immunogens have their F subunits genetically linked, their fusion peptides deleted and their interprotomer movements stabilized by an additional disulfide bond. These DS2 immunogens are promising vaccine candidates with superior attributes, such as their lack of a requirement for furin cleavage and their increased antigenic stability against heat inactivation. The iterative structure-based improvement described here may have utility in the optimization of other vaccine antigens.
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