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Updated: Feb 3, 2026

A Thrombotic Stroke Model Based On Transient Cerebral Hypoxia-ischemia
Published on: August 18, 2015
Smart hypoxia-responsive sulfated polysaccharides liposomes for controlled and targeted urokinase delivery in
Dingfu Wang1, Dan Li1, Xiaolin Liu1
1Key Laboratory of Marine Drugs of Ministry of Education, Shandong Key Laboratory of Glycoscience and Glycotherapeutics, School of Medicine and Pharmacy, Ocean University of China, Qingdao, China.
Thrombosis remains a leading cause of cardiovascular and cerebrovascular mortality worldwide. Plasminogen activators, notably urokinase and alteplase, have been established as standard thrombolytic agents in clinical practice. However, their therapeutic potential is severely compromised by rapid metabolic clearance, non-specific biodistribution, and associated hemorrhagic complications. Here, we designed a dual-functional nano drug delivery platform that leverages P-selectin overexpression on activated platelets and the characteristic hypoxic microenvironment at thrombotic sites for precision thrombolytic intervention. Specifically, we developed a hypoxia-responsive block (PAC) by conjugating polyguluronate sulfate (PGS, P-selectin targeting motif) with azobenzene-modified cholesterol, enabling urokinase encapsulation within PAC@UK liposomes. Under hypoxic conditions that mimic the thrombotic microenvironment, the reductive cleavage of azobenzene moieties initiated sustained urokinase release (96.41% cumulative release), while maintaining exceptional biocompatibility and demonstrating preferential targeting of activated platelets. Comprehensive in vivo validation across zebrafish, murine mesenteric, and carotid artery thrombosis models revealed markedly enhanced thrombolytic efficacy compared to free UK. This biomimetic nanoplatform represents a paradigm shift toward intelligent, site-specific thrombolytic intervention, offering substantial clinical promise for safer and more effective treatment of thrombotic disorders.
Thrombosis remains a leading cause of cardiovascular and cerebrovascular mortality worldwide. Plasminogen activators, notably urokinase and alteplase, have been established as standard thrombolytic agents in clinical practice. However, their therapeutic potential is severely compromised by rapid metabolic clearance, non-specific biodistribution, and associated hemorrhagic complications. Here, we designed a dual-functional nano drug delivery platform that leverages P-selectin overexpression on activated platelets and the characteristic hypoxic microenvironment at thrombotic sites for precision thrombolytic intervention. Specifically, we developed a hypoxia-responsive block (PAC) by conjugating polyguluronate sulfate (PGS, P-selectin targeting motif) with azobenzene-modified cholesterol, enabling urokinase encapsulation within PAC@UK liposomes. Under hypoxic conditions that mimic the thrombotic microenvironment, the reductive cleavage of azobenzene moieties initiated sustained urokinase release (96.41% cumulative release), while maintaining exceptional biocompatibility and demonstrating preferential targeting of activated platelets. Comprehensive in vivo validation across zebrafish, murine mesenteric, and carotid artery thrombosis models revealed markedly enhanced thrombolytic efficacy compared to free UK. This biomimetic nanoplatform represents a paradigm shift toward intelligent, site-specific thrombolytic intervention, offering substantial clinical promise for safer and more effective treatment of thrombotic disorders.
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