PBLD enhances antiviral innate immunity by promoting the p53–USP4–MAVS signaling axis

先天免疫系统 生物 病毒学 病毒 免疫 病毒复制 钻机-I 核糖核酸 下调和上调 RNA干扰 RNA病毒 细胞生物学 免疫系统 免疫学 基因 生物化学
作者
Fengyun Chu,Peili Hou,Hongchao Zhu,Yan Gao,Xiaomeng Wang,Wenqi He,Juan Ren,Min Li,Yu Liu,Daniel Chang He,Hongmei Wang,Yuwei Gao,Hongbin He
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:121 (49) 被引量:1
标识
DOI:10.1073/pnas.2401174121
摘要

Phenazine biosynthesis-like domain-containing protein (PBLD) has been reported to be involved in the development of many cancers. However, whether PBLD regulates innate immune responses and viral replication is unclear. In this study, although it was found that the activity of PBLD extends to other PRRs, we focused on the RLR pathway activated via the p53–USP4–MAVS axis in response to virus infections. We found that PBLD deubiquitinates and stabilizes MAVS through ubiquitin-specific protease 4 (USP4) to promote antiviral innate immunity. Mechanistically, PBLD activates the transcription of USP4 via the upregulation of p53. USP4, which is a MAVS-interacting protein, substantially stabilizes the MAVS protein by deconjugating K48-linked ubiquitination chains from the MAVS protein at Lys461 during RNA virus infection. Most intriguingly, RNA virus-infected primary macrophages (peritoneal macrophages, PMs, and bone marrow–derived macrophages, BMDMs) and internal organ cells (lung and liver) from PBLD-deficient mice suppress the IFN-I response and promote viral replication. Notably, PBLD-deficient mice are more susceptible to RNA virus infection than their wild-type littermates. Our findings highlight a unique function of PBLD in antiviral innate immunity through the p53–USP4–MAVS signaling, providing a preliminary basis for research on PBLD as a target molecule for treating RNA virus infection.

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