Clusterzyme-Enabled Oxidative Stress Alleviation and Microglial Polarization Modulation for Efficient Ischemic Stroke Treatment.

Zhu, Lin; Zhong, Weijie; Meng, Xuchen; Lv, Xin; Deng, Tanjun; Mei, Zixian; Liu, Xinru; Meng, Fanying et al. · Adv Healthc Mater · 2025

basic_science · Level V

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Abstract

Ischemic stroke (IS) presents a significant challenge to global health, as conventional reperfusion strategies aimed at restoring cerebral circulation paradoxically exacerbate neurological damage. This injury primarily results from the excessive production of reactive oxygen species (ROS) and the initiation of a widespread neuroinflammatory response. In this study, mercaptosuccinic acid (MSA)-coated bimetallic clusterzymes, containing an optimized ratio of Au<sub>7</sub>Ag<sub>1</sub> nanoclusters (NCs), are developed for the targeted treatment of IS reperfusion injury. The ultrafine particle size of bimetallic nanoclusters facilitates the penetration across the blood-brain barrier (BBB) and enhances catalytic capacity and enzymatic activity through synergistic effects. Comprehensive in vitro and in vivo studies demonstrate that Au<sub>7</sub>Ag<sub>1</sub> NCs provide neuroprotection by efficiently scavenging ROS and modulating microglial polarization, alleviating oxidative stress-induced injury. Furthermore, Au<sub>7</sub>Ag<sub>1</sub> NCs play a crucial role in reducing brain tissue damage following reperfusion and promoting long-term neurological function recovery. Notably, RNA sequencing reveals that Au<sub>7</sub>Ag<sub>1</sub> NCs impact key molecular pathways linked to apoptosis and inflammation. In summary, this study demonstrates the potential of Au<sub>7</sub>Ag<sub>1</sub> NCs as a novel therapeutic approach for IS reperfusion injury and highlights a promising pathway for nanomedicine-based interventions targeting ischemic cerebral disorders.

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