Ning Shi, Xinyu Cao, Xiaolong Zhu, Xiao Li, Xiangshu Qiu, Jiaxin Tian, Xiangyu Zhu, Xuancheng Zhang, Chao Shang, Ming Zhang, Ben Zhong Tang, Yuanyuan Li, Huijun Lu
Currently, monkeypox virus (MPXV) treatment methods face a dilemma of potential drug resistance. They cannot simultaneously address two core pathological mechanisms driving infection: continuous viral replication and uncontrolled inflammatory storm. To overcome these challenges, we innovatively developed a dual-function therapeutic strategy with precise virus clearance and anti-inflammatory effects, constructing a dual hydrogel system synergistically combining phototherapy and immunomodulatory effects. Specifically, aggregation-induced emission (AIE) nanoparticles (NPs) are embedded in a reactive oxygen species (ROS)-degradable polyvinyl alcohol (PVA)-N1-(4-borobenzoyl)-N3-(4-borobenzoyl)-the N1, the N1, N3, N3-tetramethylpropane-1,3-diamine (tsPBA) hydrogel, while the anti-inflammatory agent is loaded in a zwitterionic hydrogel (SBMA) matrix. Under near-infrared band laser irradiation, AIE NPs efficiently generate large amounts of ROS, which, together with inflammation-produced endogenous ROS, trigger the rapid degradation of the ROS-responsive hydrogel and release of AIE NPs. The generated ROS effectively destroys the MPXV shell and strongly inactivates the virus. After virus clearance, the SBMA hydrogel continuously releases anti-inflammatory drugs (Dexamethasone, DXMS) to inhibit excessive pro-inflammatory cytokines and reduce inflammation-induced tissue damage. In mouse, rabbit, and non-human primate models with MPXV-induced skin damage, this hydrogel nanoparticle protective layer significantly inhibits viral replication and accelerates wound healing, representing a transformative, convertible platform for treating MPXV and other highly inflammatory viral infections.