4.6 Article

pH-induced conformational change of the rotavirus VP4 spike: Implications for cell entry and antibody neutralization

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JOURNAL OF VIROLOGY
卷 79, 期 13, 页码 8572-8580

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AMER SOC MICROBIOLOGY
DOI: 10.1128/JVI.79.13.8572-8580.2005

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  1. NCRR NIH HHS [P41 RR002250, P41 RR007707] Funding Source: Medline
  2. NIAID NIH HHS [P01 AI057788, R37 AI036040, R01 AI036040, AI-36040] Funding Source: Medline
  3. NIDDK NIH HHS [DK-30144, R01 DK030144, R56 DK030144] Funding Source: Medline

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The rotavirus spike protein, VP4, is a major determinant of infectivity and neutralization. Previously, we have shown that trypsin-enhanced infectivity of rotavirus involves a transformation of the VP4 spike from a flexible to a rigid bilobed structure. Here we show that at elevated pH the spike undergoes a drastic, irreversible conformational change and becomes stunted, with a pronounced trilobed appearance. These particles with altered spikes, at a normal pH of 7.5, despite the loss of infectivity and the ability to hemagglutinate, surprisingly exhibit sialic acid (SA) -independent cell binding in contrast to the SA-dependent cell binding exhibited by native virions. Remarkably, a neutralizing monoclonal antibody that remains bound to spikes throughout the pH changes (pH 7 to 11 and back to pH 7) completely prevents this conformational change, preserving the SA-dependent cell binding and hemagglutinating functions of the virion. A hypothesis that emerges from the present study is that high-pH treatment triggers a conformational change that mimics a post-SA-attachment step to expose an epitope recognized by a downstream receptor in the rotavirus cell entry process. This process involves sequential interactions with multiple receptors, and the mechanism by which the antibody neutralizes is by preventing this conformational change.

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