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ADHM polytopes

James P. Allen, Paul Sutcliffe

Journal of High Energy Physics · 2013

Vollständiger Abstract

Worum geht es in dieser Arbeit?

An ordered therapeutic sequence in which target engagement precedes site-restricted payload delivery provides a conceptual framework for precision thrombolysis. Guided by this process-level logic, we engineered a multiarmed nanovesicle, termed tPA@CTG, that integrates CREKA-mediated thrombus targeting, thrombin-responsive activation, localized tissue plasminogen activator release, and MRI monitoring. tPA@CTG achieves efficient thrombus targeting under both static and flow conditions, along with thrombin-triggered structural activation and localized tPA release. In a rat carotid artery thrombosis model, tPA@CTG restores near-complete recanalization with a thrombolytic efficiency of 99.5 ± 0.6% and blood flow recovery of 95.1 ± 2.5%, substantially outperforming free tPA. Remarkably, even at half the dose, tPA@CTG remains more effective than full-dose free tPA, highlighting the therapeutic benefit of combining thrombus targeting with thrombin-responsive local release. Transcriptomic analysis reveals modulation of complement and coagulation pathways, indicating active remodeling of the thrombotic microenvironment beyond simple clot dissolution. Biosafety assessments confirm excellent biocompatibility and substantially reduced bleeding risk compared to free tPA. Together, tPA@CTG provides an integrated platform for targeted, thrombin-responsive, and MRI-monitored thrombolysis.

Abstract: PubMed · Datensatz

Bibliografischer Nachweis

Publikationsdaten

Autor:innen
James P. Allen, Paul Sutcliffe
Quelle
Journal of High Energy Physics
Publikation
2013-01-01
Band / Ausgabe
Nicht angegeben
Seiten
Nicht angegeben
ISSN / ISBN
1029-8479
Zitationen
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Zitierfähiger Nachweis

James P. Allen, Paul Sutcliffe (2013). ADHM polytopes. Journal of High Energy Physics. https://doi.org/10.1002/adhm.71632
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