具有糖蛋白稳定、纳米颗粒展示和聚糖修饰的新一代丝状病毒疫苗的合理设计。

Yi-Zong Lee, Yi-Nan Zhang, Maddy L Newby, Garrett Ward, Keegan Braz Gomes, Sarah Auclair, Connor DesRoberts, Joel D Allen, Andrew B Ward, Robyn L Stanfield, Linling He, Max Crispin, Ian A Wilson, Jiang Zhu
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摘要

丝状病毒频繁暴发,死亡率高,对人类健康构成重大威胁。尽管针对埃博拉病毒有两种基于载体的疫苗,但一种具有广泛保护性的丝状病毒疫苗仍然难以找到。在这项研究中,我们评估了稳定埃博拉病毒、苏丹病毒、本迪布焦病毒和拉文马尔堡病毒糖蛋白(GP)结构的一般策略。3.2 Å分辨率的晶体结构为重新设计的埃博拉病毒GP提供了原子细节,冷冻电子显微镜揭示了泛埃博拉病毒中和抗体如何靶向苏丹病毒GP上的保守位点(3.13 Å-resolution),此外还有抗体结合的Ravn病毒GP的低分辨率模型。自组装蛋白纳米颗粒(SApNP) I3-01v9在n端重新设计,以使丝状病毒GP三聚体的最佳表面展示。在详细的体外表征之后,在小鼠模型中研究了苏丹病毒GP和GP-present SApNPs的淋巴结动力学。与可溶性GP三聚体相比,SApNPs在淋巴结滤泡中的滞留时间长~ 112倍,在滤泡树突状细胞树突上的呈现时间长~ 28倍,生发中心反应强~ 3倍。在小鼠中评估了丝状病毒GP三聚体和携带野生型和修饰聚糖的SApNPs诱导的功能性抗体反应。本研究为下一代丝状病毒疫苗的研制提供了基础。一句话总结:合理设计和表征丝状病毒糖蛋白和纳米颗粒,以帮助丝状病毒疫苗的开发。
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Rational design of next-generation filovirus vaccines through glycoprotein stabilization, nanoparticle display, and glycan modification.

Filoviruses pose a significant threat to human health due to frequent outbreaks and high mortality. Although two vector-based vaccines are available for Ebola virus, a broadly protective filovirus vaccine remains elusive. Here, we evaluate a general strategy for stabilizing glycoprotein (GP) structures from Ebola, Sudan, and Bundibugyo orthoebolaviruses and Ravn orthomarburgvirus. A 3.2 Å crystal structure provides atomic-level details of the redesigned Ebola virus GP, while cryo-electron microscopy reveals how a pan-orthoebolavirus neutralizing antibody targets a conserved site on the stabilized Sudan virus GP (3.13 Å resolution), along with a low-resolution model of antibody-bound Ravn virus GP. A self-assembling protein nanoparticle (SApNP), I3-01v9, is redesigned at the N terminus to enable optimal surface display of filovirus GP trimers. Following detailed in vitro characterization, we examine the lymph node dynamics of Sudan virus GP and GP-presenting SApNPs in mice. Compared with the soluble trimer, SApNPs exhibit ~112-fold longer retention in lymph node follicles, up to 28-fold greater presentation on follicular dendritic cell dendrites, and up to 3-fold stronger germinal center reactions. Functional antibody responses induced by filovirus GP trimers and SApNPs bearing wild-type and modified glycans are assessed in mice. This study provides a foundation for next-generation filovirus vaccine development.

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