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◇ bioRxiv2026-08-08· microbiology

E3 ubiquitin ligase HUWE1 mediates K6-linked polyubiquitylation and stabilization of Nrf2 to restrict hepatitis B virus replication

M. R. Solichin, L. Deng, H. Felisha, Y. P. Krisnugraha, C. Matsui, T. Abe, A. Ryo, K. Watashi, M. Muramatsu, I. Shoji

原始摘要(英文原文)· Original abstract
Hepatitis B virus (HBV) infection remains a major global health burden, and HBV X protein (HBx) plays a central role in modulating host pathways that influence viral replication. We previously reported that the oxidative stress sensor Kelch-like ECH-associated protein 1 (Keap1) recognizes HBx to activate the NF-E2-related factor 2 (Nrf2) signaling pathway to suppress HBV replication. Although canonical K48-linked ubiquitylation is known to control Nrf2 turnover, the contribution of non-canonical ubiquitin linkages to Nrf2 regulation during HBV infection remains unclear. Here, we investigated the role of HECT, UBA, and WWE domain-containing E3 ubiquitin ligase 1 (HUWE1) in the regulation of Nrf2 in the context of HBV replication. Cell-based ubiquitylation assays demonstrated that HUWE1 knockdown reduced HBx-mediated K6-linked polyubiquitylation of Nrf2, while overexpression of wild-type HUWE1, but not the catalytically inactive HUWE1(C4341A) mutant, enhanced it. Coimmunoprecipitation and proximity ligation assays demonstrated that HUWE1 interacts with HBx in the cytoplasm and binds Nrf2 only in the presence of HBx, suggesting that HBx promotes the interaction between HUWE1 and Nrf2. Cycloheximide chase assays demonstrated that HUWE1 knockdown destabilized Nrf2 in HBx-expressing cells. Furthermore, depletion or pharmacological inhibition of HUWE1 increased intracellular HBV RNA and pgRNA levels as well as extracellular HBV DNA and HBsAg levels in HBV-infected cells. Collectively, these results support a model in which HUWE1 mediates HBx-dependent K6-linked polyubiquitylation and stabilization of Nrf2 to restrict HBV replication. This study expands current understanding of non-canonical ubiquitin signaling in HBV-host interactions.
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