Identification and characterization of the host protein DNAJC14 as a broadly active flavivirus replication modulator

Zhigang Yi1, Lindsey Sperzel, Cindy Nürnberger

  • 1Laboratory of Virology and Infectious Disease, The Rockefeller University, New York, New York, USA.

Plos Pathogens
|January 21, 2011
PubMed

Insights

Researchers identified DNAJC14, a cellular chaperone protein, as a key factor in inhibiting flaviviruses like yellow fever virus (YFV). This discovery offers new insights into host-pathogen interactions and potential antiviral strategies against Flaviviridae family viruses.

Area of Science:

  • Virology
  • Molecular Biology
  • Cellular Biology

Background:

  • Flaviviridae family viruses, including flaviviruses, pose significant global health threats due to widespread infections and mortality.
  • Identifying cellular factors that restrict viral replication is crucial for developing antiviral therapies.

Purpose of the Study:

  • To identify cellular factors with antiviral activity against flaviviruses.
  • To investigate the role of the Hsp40 chaperone DNAJC14 in the replication of Flaviviridae family viruses.

Main Methods:

  • Screening of a cDNA library to identify antiviral cellular factors.
  • Overexpression and mutagenesis of DNAJC14.
  • Viral RNA replication assays.
  • Immunofluorescence and dsRNA staining.
  • Silencing of endogenous DNAJC14.

Main Results:

  • DNAJC14 overexpression inhibits replication of yellow fever virus (YFV), Kunjin, Langat virus, and hepatitis C virus (HCV).
  • DNAJC14 is recruited to viral replication complexes and its J-domain and C-terminal domain are essential for anti-YFV activity.
  • Silencing endogenous DNAJC14 impairs YFV replication, indicating its necessity for replication complex assembly.

Conclusions:

  • DNAJC14 acts as a host factor that restricts the replication of diverse Flaviviridae viruses.
  • The interaction between DNAJC14 and Flaviviridae viruses highlights a conserved host-pathogen interplay.
  • DNAJC14's role in viral replication complex assembly presents a potential target for antiviral drug development.

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