A RVG‐modified liposomal nanoplatform for targeted delivery of mollugin (Mol@Lip‐RVG) as a novel therapeutic strategy for SCI resulted in enhanced neuro‐preservation and substantial improvement in motor function recovery, achieved through dual modulation of microglial reprogramming and attenuation of oxidative stress.
Abstract
Spinal cord injury (SCI) remains a major clinical challenge because the inflammatory and oxidative microenvironment drives secondary tissue damage. Although mollugin (Mol) possesses anti‐inflammatory, antioxidant, and neuroprotective activities, its therapeutic application is limited by poor water solubility and rapid clearance. In this study, we developed a RVG‐modified liposomal nanoplatform for targeted delivery of mollugin (Mol@Lip‐RVG) as a novel therapeutic strategy for SCI. The Mol@Lip‐RVG nanoplatform exhibited excellent biocompatibility, favorable physicochemical characteristics, and sustained drug release profile. In vitro studies demonstrated that Mol@Lip‐RVG effectively downregulated pro‐inflammatory mediators, promoted microglial polarization from the pro‐inflammatory M1 phenotype toward the anti‐inflammatory M2 phenotype, and significantly reduced reactive oxygen species production. In SCI mice, the RVG modification enabled efficient crossing of the BSCB and selective accumulation at the injury site through specific binding to nAChRs. This targeted delivery resulted in enhanced neuro‐preservation and substantial improvement in motor function recovery, achieved through dual modulation of microglial reprogramming and attenuation of oxidative stress. Mechanistically, we demonstrated that Mol@Lip‐RVG exerts its therapeutic effects is associated with inhibition of the NF‐κB signaling pathway, thereby suppressing neuroinflammation. Collectively, these findings establish the Mol@Lip‐RVG nanoplatform as a promising targeted therapeutic approach that addresses both the delivery challenges and complex pathophysiology of spinal cord injury.
ABSTRACT Spinal cord injury (SCI) is a devastating disorder of the central nervous system (CNS) leading to irreversible neurological deficits. Effective pharmacotherapy remains elusive, due to the restrictive blood‐spinal cord barrier (BSCB), underscoring the urgent need for targeted and efficient drug delivery strateg...
Yi-Xuan Wang, Bo Jin, Shi-Pian Li et al.· Advancement of science· 0 citations
Ischemic stroke reperfusion injury is driven by oxidative stress and neuroinflammation, but current neuroprotective strategies suffer from poor targeting, limited functionality, and low blood‑-brain barrier (BBB) penetration. Herein, a multifunctional nanoplatform (RM@HPAN) is constructed: a hollow mesoporous Prussian...
Spinal cord injury (SCI) is a devastating neurological disorder characterized by excessive neuroinflammation and limited regenerative capacity. Here, we developed a reactive oxygen species (ROS)-responsive hydrogel for localized delivery of liposomal indole-3-propionic acid (IPA), a gut microbiota-derived metabolite wi...
Long-Yu Li, Yu-Hao Zhang, Zhi-Shuo Wang et al.· Materials Today Bio· 0 citations
The secondary injury cascade following spinal cord injury (SCI) involves complex pathological processes, with the interplay between ferroptosis and oxidative stress serving as a key impediment to neural repair. Ferrostatin-1 (Fer-1), an inhibitor of ferroptosis, faces limitations in clinical translation due to its low...
Secondary injury after traumatic brain injury (TBI) is characterized by excessive reactive oxygen species (ROS) production and persistent neuroinflammation, which remain difficult to control using a single therapeutic agent. Herein, a dissolvable microneedle platform based on Prussian blue (PB) nanoparticles was develo...
Xiang Wang, Ge Gao, Jin-Hua Li et al.· Advanced Healthcare Material...· 0 citations