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Updated: Sep 2, 2026

Injection of Hydrogel Biomaterial Scaffolds to The Brain After Stroke
Published on: October 1, 2020
Ultrasound-Programmable ROS-Responsive Hydrogel Orchestrates Staged Immunomodulation and Neurorepair after
Ruiying Han1, Yunsen He2, Yonglin He3
1Department of Orthodontics, Stomatological Hospital, School of Stomatology, Southern Medical University, 366, Jiangnan Avenue South, Guangzhou510280, China.
Abstract:
Intracerebral hemorrhage (ICH) remains a highly lethal and disabling subtype of stroke, and the lack of effective disease-modifying therapies largely reflects the complexity of its secondary injury mechanisms: oxidative stress predominates early and fuels neuroinflammation, whereas impaired neurorepair persists into the subacute phase. Microglia orchestrate these stage-dependent responses and represent a tractable target for shifting perihematomal pathology from damage amplification toward repair. In this study, we developed an injectable, reactive oxygen species (ROS)-responsive therapeutic platform that combines local ROS scavenging with low-intensity-focused ultrasound (LIFU)-enhanced delivery of immunomodulatory and neurotrophic cues. A self-curing polyvinyl alcohol (PVA)-TSPBA hydrogel, hereafter referred to as PT, was engineered to scavenge ROS and to co-encapsulate IL-4 with porous PLGA microspheres containing NT-3, forming IL4-NT3@PT, which gelled rapidly within the operational observation window, exhibited brain-compatible mechanics, showed CSF-like degradability, and scavenged H2O2. In vitro, IL4-NT3@PT reduced oxidative burden and corrected pro-inflammatory microglial bias, with stronger effects after LIFU triggering. In vivo, LIFU-triggered IL4/NT3@PT accelerated lesion resolution and improved motor recovery, while transcriptomic and histological analyses supported immune-network reprogramming, attenuation of oxidative stress and neuroinflammation, reduced microglial activation, and improved tissue preservation. An ultrasound-actuated, injectable ROS-scavenging hydrogel platform enabling sequential IL-4/NT-3 delivery provides a minimally invasive platform for phase-adapted intervention in hemorrhagic brain injury.
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