黏液物理上限制甲型流感病毒颗粒进入上皮。

IF 3.2 3区 生物学 Q3 MATERIALS SCIENCE, BIOMATERIALS
Logan Kaler, Elizabeth M. Engle, Maria Corkran, Ethan Iverson, Allison Boboltz, Maxinne A. Ignacio, Taj Yeruva, Margaret A. Scull, Gregg A. Duncan
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引用次数: 0

摘要

先前的研究表明,甲型流感病毒(IAV)通过病毒包膜蛋白、血凝素和神经氨酸酶的作用,以唾液酸依赖的方式穿过气道粘液屏障。然而,影响黏液捕获IAV效率的宿主和病毒因素仍然不明确。在这项工作中,粘液的物理化学性质如何影响其有效捕获IAV的能力,使用荧光视频显微镜和多粒子跟踪进行评估。我们的研究表明,气道粘液凝胶层必须产生病毒大小的孔,以物理上限制IAV。虽然唾液酸与IAV结合可以提高黏液捕获效率,但研究发现唾液酸的结合偏好对IAV的流动性和预期穿透黏液屏障的病毒颗粒的比例影响不大。此外,具有黏液样结构的合成聚合物水凝胶尽管缺乏唾液酸诱饵受体,但对IAV感染具有类似的保护作用。总之,这项工作提供了对IAV的粘液屏障功能的新见解,对先天宿主防御和呼吸道病毒传播具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mucus Physically Restricts Influenza A Viral Particle Access to the Epithelium

Mucus Physically Restricts Influenza A Viral Particle Access to the Epithelium

Prior work suggests influenza A virus (IAV) crosses the airway mucus barrier in a sialic acid-dependent manner through the actions of the viral envelope proteins, hemagglutinin, and neuraminidase. However, host and viral factors that influence how efficiently mucus traps IAV remain poorly defined. In this work, how the physicochemical properties of mucus influence its ability to effectively capture IAV is assessed using fluorescence video microscopy and multiple particle tracking. Our studies suggest an airway mucus gel layer must be produced with virus-sized pores to physically constrain IAV. While sialic acid binding by IAV may improve mucus trapping efficiency, sialic acid binding preference is found to have little impact on IAV mobility and the fraction of viral particles expected to penetrate the mucus barrier. Further, synthetic polymeric hydrogels engineered with mucus-like architecture are similarly protective against IAV infection despite their lack of sialic acid decoy receptors. Together, this work provides new insights on mucus barrier function toward IAV with important implications on innate host defense and transmission of respiratory viruses.

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来源期刊
Advanced biology
Advanced biology Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
6.60
自引率
0.00%
发文量
130
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