4.5 Article

Targeted Thrombolysis by Using of Magnetic Mesoporous Silica Nanoparticles

Journal

JOURNAL OF BIOMEDICAL NANOTECHNOLOGY
Volume 8, Issue 4, Pages 624-632

Publisher

AMER SCIENTIFIC PUBLISHERS
DOI: 10.1166/jbn.2012.1416

Keywords

Target Thrombolysis; Magnetic Mesoporous Materials; Nanoparticle; Lysis Efficiency; Fibrinolytic Disc; Sustainable Release

Funding

  1. National 863 High-Tech Program [2009AA03Z333]
  2. Shanghai ST Project [1052NM01100, 11DZ2211001]
  3. SJTU [YG2009ZD203, YG2010ZD102, AE4160003]

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Thrombolytics inevitably led to the risk of hemorrhagic complications due to their non-specific plasminogen activation in treatment of thrombosis. The aim of this study was to determine whether a kind of superparamagnetic mesoporous silica nanoparticle with expanded pore size could achieve effectively targeted thrombolysis. The magnetic mesoporous silica nanoparticles (M-MSNs) with the pore size of 6 nm were prepared by method of the surfactant templating on nano magnetic particles. We investigated the feasibility and efficacy of target thrombolysis with the resultant spheres through fibrin agarose plate assay (FAPA) and a dynamic flow system in vitro. It displayed a 30-fold enhancement of urokinase (UK) loading capacity over the particles without mesoporous layer or the magnetic spheres with mesopores of 3.7 nm. A sustained release behavior was observed due to its larger pore size, higher surface area and narrow mesopore channals contrast to non-mesoporous and small mesopore of 3.7 nm controls. Meanwhile, fibrin agarose plate assay revealed that UK/M-MSNs exhibited a more rapid growth rate of thrombolysis even lasting for 3 days. Additionally, flow model test in vitro suggested this kind of nanoparticle complex enhanced the thrombolysis efficacy by 3.5 fold over the same amount of native UK in 30 min. When compared to non-mesoporous and small mesopore controls, it also represented an extremely higher lysis efficiency (ANOVA, P < 0.01) and a shorter reperfusion time (ANOVA, P < 0.001). Such a magnetic mesoporous silica nanoparticle carrier was expected to be further studied for targeted thrombolytic therapy.

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