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May 15, 2026Journal of Virology0 citationsOpen Access

Cellular hnRNP D promotes influenza A virus replication by inhibiting TBK1-IRF3-mediated innate immune response

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CXChenchen XuYPYunling PengSLShuhui Liu

Key Result

Cellular hnRNP D promotes influenza A virus replication by interacting with IRF3 and disrupting the TBK1-IRF3 signaling axis, thereby suppressing the type I interferon response.

Key Points

  • This study aims to elucidate the role of hnRNP D in influenza A virus replication and its underlying mechanisms.
  • Confirmed interaction between hnRNP D and PB2 protein of IAV strain PR8.
  • Investigated effects of hnRNP D on viral transcriptional activity and innate immune response.
  • Analyzed the role of hnRNP D in the TBK1-IRF3 signaling pathway.
  • hnRNP D enhances viral titer in A549 cells by suppressing IFN-β promoter activation.
  • hnRNP D inhibits TBK1 binding to IRF3, preventing its phosphorylation and activation.
  • Mechanistic insights reveal novel viral immune evasion strategies through host RNA-binding proteins.

Structured PICO

P
Population
A549 cells and Influenza A virus (A/Puerto Rico/8/1934 (PR8, H1N1) strain)
I
Intervention
Cellular hnRNP D
O
Outcome
Viral replication (viral titer) and type I interferon response (TBK1-IRF3 signaling)surrogate

Cellular hnRNP D promotes influenza A virus replication by disrupting the TBK1-IRF3 signaling axis and suppressing the host innate immune response.

Abstract

Heterogeneous nuclear ribonucleoproteins (hnRNPs) play important roles in the life cycle of influenza A virus (IAV). Our previous mass spectrometry analysis identified cellular hnRNP D as a novel interaction partner of the IAV polymerase basic 2 (PB2) protein. However, the functional implications of hnRNP D in IAV replication and the underlying mechanisms remained unknown. In this study, we confirmed that hnRNP D directly interacts with the PB2 protein of the A/Puerto Rico/8/1934 (PR8, H1N1) strain, while also binding to other proteins within viral ribonucleoprotein complexes (vRNPs). These interactions collectively inhibit vRNPs assembly and viral polymerase activity. However, we have found that hnRNP D enhances the viral titer of IAV in A549 cells. Mechanistically, hnRNP D suppresses the activation of the interferon (IFN)-β promoter, and the mRNA levels of downstream factors in the type I IFN signaling pathway. In detail, hnRNP D inhibits IFN-β promoter activation induced by crucial antiviral proteins and interacts strongly with the interferon regulatory factor 3 (IRF3). More importantly, hnRNP D blocks the binding of TANK-binding kinase 1 (TBK1) to IRF3, thereby impeding the phosphorylation and activation of IRF3. Collectively, we unveil a novel viral immune evasion strategy by which IAV hijacks a host RNA-binding protein, hnRNP D, to facilitate self-replication. This work not only elucidates the intricate trade-off mechanisms in virus-host interaction but also identifies hnRNP D as a potential therapeutic target aimed at bolstering antiviral immunity. IMPORTANCE: Influenza viruses are serious zoonotic pathogens, causing millions of severe infections and hundreds of thousands of deaths annually. The hnRNP family is known to influence IAV replication and pathogenesis. Here, we demonstrate for the first time that hnRNP D functions as a positive factor for IAV replication. We show that hnRNP D exerts a net promoting effect on viral replication primarily by suppressing the type I interferon response. The mechanism of action involves viral infection upregulating hnRNP D, which interacts with the key transcription factor IRF3, disrupting the TBK1-IRF3 signaling axis. Our findings provide novel insights into how a host RNA-binding protein can be co-opted by IAV to dampen antiviral innate immunity, presenting a potential target for developing new therapeutic strategies against influenza.

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Cite This Study

Xu et al. (2026) studied Influenza A virus infection. hnRNP D was evaluated on Viral replication and type I interferon response. Cellular hnRNP D promotes influenza A virus replication by interacting with IRF3 and disrupting the TBK1-IRF3 signaling axis, thereby suppressing the type I interferon response.

synapsesocial.com/papers/6a06b940e7dec685947abe19https://doi.org/10.1128/jvi.00257-26
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