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Updated: Jun 22, 2026

Zika Virus Infectious Cell Culture System and the In Vitro Prophylactic Effect of Interferons
Published on: August 23, 2016
Inhibitors of the small membrane (M) protein viroporin prevent Zika virus infection
Emma Brown1,2, Gemma Swinscoe1,2,3, Daniella A Lefteri2
1Astbury Centre for Structural and Molecular Biology, University of Leeds, Leeds, United Kingdom.
Abstract:
Flaviviruses, including Zika virus (ZIKV), are a significant global health concern, yet no licensed antivirals exist to treat disease. The small membrane (M) protein plays well-defined roles during viral egress and remains within virion membranes following release and maturation. However, it is unclear whether M plays a functional role in this setting. Here, we show that M forms oligomeric membrane-permeabilising channels in vitro, with increased activity at acidic pH and sensitivity to the prototypic channel-blocker, rimantadine. Accordingly, rimantadine blocked an early stage of ZIKV cell culture infection. Structure-based channel models, comprising hexameric arrangements of two trans-membrane domain protomers were shown to comprise more stable assemblages than other oligomers using molecular dynamics simulations. Models contained a predicted lumenal rimantadine-binding site, as well as a second druggable target region on the membrane-exposed periphery. In silico screening enriched for repurposed drugs/compounds predicted to bind to either one site or the other. Hits displayed superior potency in vitro and in cell culture compared with rimantadine, with efficacy demonstrably linked to virion-resident channels. Finally, rimantadine effectively blocked ZIKV viraemia in preclinical models, supporting that M constitutes a physiologically relevant target. This could be explored by repurposing rimantadine, or development of new M-targeted therapies.
Insights
Flavivirus membrane protein M forms channels that can be blocked by rimantadine, offering a new target for antiviral therapies against Zika virus (ZIKV) and related diseases.
Area of Science:
- Virology
- Structural Biology
- Drug Discovery
Background:
- Flaviviruses, such as Zika virus (ZIKV), pose significant global health risks, with no approved antiviral treatments.
- The viral membrane (M) protein's role in virion maturation is known, but its function within mature virions is unclear.
Purpose of the Study:
- To investigate the functional role of the ZIKV M protein in mature virions.
- To identify and validate the M protein as a potential antiviral target.
Main Methods:
- In vitro characterization of M protein oligomerization and channel activity.
- Molecular dynamics simulations to model M protein channel structures.
- In silico drug screening against predicted binding sites.
- In vitro and cell culture assays to evaluate drug efficacy.
- Preclinical models to assess in vivo antiviral activity.
Main Results:
- ZIKV M protein forms oligomeric, membrane-permeabilizing channels active at acidic pH.
- Rimantadine effectively blocks M protein channel activity and inhibits early ZIKV infection in cell culture.
- Structure-based models identified druggable sites on the M protein, leading to potent repurposed drug candidates.
- Rimantadine demonstrated efficacy in blocking ZIKV viraemia in preclinical models.
Conclusions:
- The ZIKV M protein forms functional ion channels within virions, representing a viable target for antiviral intervention.
- Repurposing existing drugs like rimantadine or developing novel M-targeted therapies holds promise for treating flaviviral infections.
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