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May 18, 2026Journal of Nanobiotechnology0 citationsOpen Access

Hydrogel delivery platform of engineered apoptotic vesicles for ischemic stroke therapy

DXDongdong XiaoYSYin ShenJGJinlu Gan

Key Points

  • This research aims to develop a hydrogel delivery system utilizing engineered apoptotic vesicles for ischemic stroke therapy.
  • Utilized a ROS-responsive hydrogel to release functionalized apoptotic vesicles.
  • Conducted proteomic analyses on apoptotic vesicles from neural stem cells.
  • Performed in vitro and in vivo experiments to evaluate therapeutic effects.
  • Hydrogel effectively reduced oxidative stress and promoted angiogenesis in affected areas.
  • Administration of hydrogen sulfide-functionalized apoVs led to significant neuroprotection.
  • Demonstrated improvement in environment conducive to tissue repair after stroke.

Abstract

Ischemic stroke, induced by the occlusion of cerebral blood vessels, represents a leading cause of global morbidity and mortality. Although thrombolytic therapy and mechanical thrombectomy are cornerstone treatments for restoring cerebral perfusion, their clinical effectiveness is severely constrained by a narrow therapeutic window. This study presents a reactive oxygen species (ROS) - responsive hydrogel platform loaded with engineered apoptotic vesicles (apoVs) designed to simultaneously target multiple post-stroke pathological processes. Proteomic analyses reveal that apoV isolated from apoptotic neural stem cells are enriched in proteins associated with angiogenesis and neuroprotection. In vitro investigations and in vivo animal experiment further demonstrate that the hydrogel can alleviate oxidative stress, promote angiogenesis and protect nerve injury by releasing hydrogen sulfide (H2S) - functionalized apoV in the infarct area. In summary, this hydrogel platform holds considerable therapeutic promise by transforming the hostile post-stroke microenvironment into a regeneration-permissive niche, thereby fostering endogenous tissue repair.

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Cite This Study

Xiao et al. (2026) studied this question.

synapsesocial.com/papers/6a0aace55ba8ef6d83b70481https://doi.org/10.1186/s12951-026-04519-7
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