Bernadeta Dadonaite, Jenny J Ahn, Jordan T Ort, Jin Yu, Colleen Furey, Annie Dosey, William W Hannon, Amy L Vincent Baker, Richard J Webby, Neil P King, Yan Liu, Scott E Hensley, Thomas P Peacock, Louise H Moncla, Jesse D Bloom
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引用次数: 0
摘要
H5 流感被认为是一种潜在的大流行威胁。最近,属于 2.3.4.4b 支系的 H5 病毒在禽类和多种非人类哺乳动物中引起了大规模爆发。先前的研究已经确定了病毒血凝素(HA)蛋白的分子表型,这些表型会导致病毒在人类中的大流行,包括细胞进入、受体偏好、HA 稳定性和多克隆血清中和能力降低。然而,之前的实验工作只测量了这些表型如何受到 HA 可能发生的 10,000 多种氨基酸突变中少数几种突变的影响。在这里,我们使用伪病毒深度突变扫描来测量 2.3.4.4b H5 HA 的所有突变如何影响每种表型。我们发现了能使 HA 更好地结合 α2-6 连接的硅酸的突变,并证明一些病毒已经携带了能稳定 HA 的突变。我们还测量了所有 HA 突变如何影响接种 2.3.4.4b H5 病毒或感染 2.3.4.4b H5 病毒的小鼠和雪貂血清的中和作用。通过这些抗原图谱,我们可以快速评估新的病毒株何时获得了可能与候选疫苗病毒产生错配的突变。总之,深度突变扫描的系统性与假病毒的安全性相结合,能够全面测量突变的表型效应,为实时解读监测 H5 流感期间观察到的病毒变异提供信息。
Deep mutational scanning of H5 hemagglutinin to inform influenza virus surveillance.
H5 influenza is considered a potential pandemic threat. Recently, H5 viruses belonging to clade 2.3.4.4b have caused large outbreaks in avian and multiple nonhuman mammalian species. Previous studies have identified molecular phenotypes of the viral hemagglutinin (HA) protein that contribute to pandemic potential in humans, including cell entry, receptor preference, HA stability, and reduced neutralization by polyclonal sera. However, prior experimental work has only measured how these phenotypes are affected by a handful of the >10,000 different possible amino-acid mutations to HA. Here, we use pseudovirus deep mutational scanning to measure how all mutations to a 2.3.4.4b H5 HA affect each phenotype. We identify mutations that allow HA to better bind α2-6-linked sialic acids and show that some viruses already carry mutations that stabilize HA. We also measure how all HA mutations affect neutralization by sera from mice and ferrets vaccinated against or infected with 2.3.4.4b H5 viruses. These antigenic maps enable rapid assessment of when new viral strains have acquired mutations that may create mismatches with candidate vaccine virus, and we show that a mutation present in some recent H5 HAs causes a large antigenic change. Overall, the systematic nature of deep mutational scanning combined with the safety of pseudoviruses enables comprehensive measurements of the phenotypic effects of mutations that can inform real-time interpretation of viral variation observed during surveillance of H5 influenza.
期刊介绍:
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