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Published on: August 29, 2025
The cellular RNA helicase DDX1 interacts with coronavirus nonstructural protein 14 and enhances viral replication
Linghui Xu1, Siti Khadijah, Shouguo Fang
1Institute of Molecular and Cell Biology, 61 Biopolis Drive, Proteos, Singapore.
Abstract:
The involvement of host proteins in the replication and transcription of viral RNA is a poorly understood area for many RNA viruses. For coronaviruses, it was long speculated that replication of the giant RNA genome and transcription of multiple subgenomic mRNA species by a unique discontinuous transcription mechanism may require host cofactors. To search for such cellular proteins, yeast two-hybrid screening was carried out by using the nonstructural protein 14 (nsp14) from the coronavirus infectious bronchitis virus (IBV) as a bait protein, leading to the identification of DDX1, a cellular RNA helicase in the DExD/H helicase family, as a potential interacting partner. This interaction was subsequently confirmed by coimmunoprecipitation assays with cells coexpressing the two proteins and with IBV-infected cells. Furthermore, the endogenous DDX1 protein was found to be relocated from the nucleus to the cytoplasm in IBV-infected cells. In addition to its interaction with IBV nsp14, DDX1 could also interact with the nsp14 protein from severe acute respiratory syndrome coronavirus (SARS-CoV), suggesting that interaction with DDX1 may be a general feature of coronavirus nsp14. The interacting domains were mapped to the C-terminal region of DDX1 containing motifs V and VI and to the N-terminal portion of nsp14. Manipulation of DDX1 expression, either by small interfering RNA-induced knockdown or by overexpression of a mutant DDX1 protein, confirmed that this interaction may enhance IBV replication. This study reveals that DDX1 contributes to efficient coronavirus replication in cell culture.
Insights
Host protein DDX1 aids coronavirus replication. This RNA helicase interacts with nonstructural protein 14 (nsp14) from infectious bronchitis virus (IBV) and SARS-CoV, enhancing viral RNA synthesis and cell culture replication.
Area of Science:
- Virology
- Molecular Biology
- Host-Pathogen Interactions
Background:
- Host protein involvement in RNA virus replication is often unclear.
- Coronaviruses' large RNA genomes and unique transcription suggest a need for host cofactors.
Purpose of the Study:
- To identify host cellular proteins interacting with coronavirus nonstructural protein 14 (nsp14).
- To investigate the role of identified host proteins in viral replication.
Main Methods:
- Yeast two-hybrid screening using IBV nsp14 as bait.
- Coimmunoprecipitation assays to confirm protein interactions.
- Manipulation of DDX1 expression (knockdown/overexpression) and domain mapping.
Main Results:
- Identified DDX1, an RNA helicase, as an interacting partner of IBV nsp14.
- Confirmed DDX1-nsp14 interaction in infected cells and mapped interaction domains.
- Demonstrated DDX1 interaction with SARS-CoV nsp14, suggesting a general role for coronavirus nsp14.
- Showed DDX1 relocation to the cytoplasm upon IBV infection.
- Found that DDX1 enhances IBV replication in cell culture.
Conclusions:
- DDX1 is a host protein that interacts with coronavirus nsp14.
- DDX1 plays a role in facilitating efficient coronavirus replication.
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