Related Experiment Video
Updated: Apr 9, 2026

Multi-target Parallel Processing Approach for Gene-to-structure Determination of the Influenza Polymerase PB2 Subunit
Published on: June 28, 2013
Targeting Importin-α7 as a Therapeutic Approach against Pandemic Influenza Viruses
Abstract:
Viral drug resistance is believed to be less likely to occur if compounds are directed against cellular rather than viral proteins. In this study, we analyzed the feasibility of a crucial viral replication factor, namely, importin-α7, as a cellular drug target to combat pandemic influenza viruses. Surprisingly, only five viral lung-to-lung passages were required to achieve 100% lethality in importin-α7⁻/⁻ mice that otherwise are resistant. Viral escape from importin-α7 requirement was mediated by five mutations in the viral ribonucleoprotein complex and the surface glycoproteins. Moreover, the importin-α7⁻/⁻ mouse-adapted strain became even more virulent for wild-type mice than the parental strain. These studies show that targeting host proteins may still result in viral escape by alternative pathways, eventually giving rise to even more virulent virus strains. Thus, therapeutic intervention strategies should consider a multitarget approach to reduce viral drug resistance. IMPORTANCE Here, we investigated the long-standing hypothesis based on in vitro studies that viral drug resistance occurrence is less likely if compounds are directed against cellular rather than viral proteins. Here, we challenged this hypothesis by analyzing, in an in vivo animal model, the feasibility of targeting the cellular factor importin-α7, which is crucial for human influenza virus replication and pathogenesis, as an efficient antiviral strategy against pandemic influenza viruses. In summary, our studies suggest that resistance against cellular factors is possible in vivo, and the emergence of even more virulent viral escape variants calls for particular caution. Thus, therapeutic intervention strategies should consider a multitarget approach using compounds against viral as well as cellular factors to reduce the risk of viral drug resistance and potentially increased virulence.
Insights
Targeting cellular factor importin-α7 against influenza viruses surprisingly led to rapid viral escape and increased virulence in mice. This highlights the need for multitarget antiviral strategies to prevent drug resistance.
Area of Science:
- Virology
- Immunology
- Drug Discovery
Background:
- Viral drug resistance is a major concern, with strategies often focusing on viral targets.
- Cellular proteins are considered less prone to resistance when targeted by antiviral compounds.
- Importin-α7 is a critical cellular factor for influenza virus replication.
Purpose of the Study:
- To investigate the feasibility of targeting importin-α7, a cellular factor, as an antiviral strategy against pandemic influenza viruses.
- To challenge the hypothesis that targeting cellular proteins reduces viral drug resistance.
- To analyze the potential for viral escape and increased virulence when targeting host factors.
Main Methods:
- In vivo study using importin-α7 knockout (importin-α7⁻/⁻) mice and wild-type mice.
- Serial lung-to-lung passages of influenza virus in importin-α7⁻/⁻ mice.
- Genetic analysis of viral mutations mediating escape from importin-α7 dependence.
Main Results:
- Influenza virus rapidly acquired resistance to importin-α7 dependence in importin-α7⁻/⁻ mice within five passages.
- Viral escape was mediated by mutations in the viral ribonucleoprotein complex and surface glycoproteins.
- The importin-α7-adapted strain exhibited increased virulence in both importin-α7⁻/⁻ and wild-type mice compared to the parental strain.
Conclusions:
- Targeting host cellular factors like importin-α7 can still lead to rapid viral drug resistance and the emergence of more virulent strains.
- In vivo studies challenge the in vitro assumption that cellular targets are inherently more resistant to viral escape.
- Multitarget therapeutic strategies, combining agents against viral and cellular factors, are crucial to mitigate antiviral resistance and potential virulence escalation.

