Jiasong Xiong, Xian Lin, Wei Tang, Lili Wu, Qin Chen, Mengke Li, Xindi Huang, Lianzhong Zhao, Shiyun Chen
Emerging evidence has revealed the critical roles of microRNAs (miRNAs) in the regulation of innate immune responses. Nevertheless, it remains poorly understood whether specific miRNAs can directly modulate retinoic acid-inducible gene I (RIG-I), a principal sensor of cytoplasmic viral RNA and a key initiator of antiviral innate immunity. In this study, we identified miR-26a-5p as a potent activator of the innate antiviral immune responses. Notably, this activation operates independently of the canonical miRNA pathways of translational repression and mRNA degradation. Instead, we demonstrated that miR-26a-5p exerts its immunostimulatory effects by specifically binding to the RIG-I receptor. RNA immunoprecipitation and RNA pull-down assays confirmed a direct physical interaction between miR-26a-5p and the RIG-I protein. Subsequent site-directed mutagenesis verified that an AU-rich motif is critical for miR-26a-5p-driven RIG-I activation. Viral challenge experiments demonstrated that miR-26a-5p confers broad-spectrum, RIG-I-dependent antiviral activity against both DNA viruses (herpes simplex virus type 1 and Kaposi's sarcoma-associated herpesvirus) and RNA viruses (influenza A virus and respiratory syncytial virus). Collectively, our study indicates that miR-26a-5p may serve as a ligand that binds to and activates the RIG-I receptor. This discovery uncovers a previously unrecognized mechanism through which host miRNAs regulate antiviral innate immunity.