Vascular Endoluminal Delivery of Mesenchymal Stem Cells Using Acoustic Radiation Force

Restoration of functional endothelium is a requirement for preventing late stent thrombosis. We propose a novel method for targeted delivery of stem cells to a site of arterial injury using ultrasound-generated acoustic radiation force. Mesenchymal stem cells (MSCs) were surface-coated electrostatic...

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Veröffentlicht in:Tissue engineering. Part A 2011-05, Vol.17 (9-10), p.1457-1464
Hauptverfasser: Toma, Catalin, Fisher, Andrew, Wang, Jianjun, Chen, Xucai, Grata, Michelle, Leeman, Jonathan, Winston, Brion, Kaya, Mehmet, Fu, Huili, Lavery, Linda, Fischer, David, Wagner, William R., Villanueva, Flordeliza S.
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Sprache:eng
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Zusammenfassung:Restoration of functional endothelium is a requirement for preventing late stent thrombosis. We propose a novel method for targeted delivery of stem cells to a site of arterial injury using ultrasound-generated acoustic radiation force. Mesenchymal stem cells (MSCs) were surface-coated electrostatically with cationic gas-filled lipid microbubbles (mb-MSC). mb-MSC was characterized microscopically and by flow cytometry. The effect of ultrasound (5 MHz) on directing mb-MSC movement toward the vessel wall under physiologic flow conditions was tested in vitro in a vessel phantom. In vivo testing of acoustic radiation force-mediated delivery of mb-MSCs to balloon-injured aorta was performed in rabbits using intravascular ultrasound (1.7 MHz) during intra-aortic infusion of mb-MSCs. Application of ultrasound led to marginalization and adhesion of mb-MSCs to the vessel phantom wall, whereas no effect was observed on mb-MSCs in the absence of ultrasound. The effect was maximal when there were 7±1 microbubbles/cell ( n =6). In rabbits ( n =6), adherent MSCs were observed in the ultrasound-treated aortic segment 20 min after the injection (334±137 MSCs/cm 2 ), whereas minimal adhesion was observed in control segments not exposed to ultrasound (2±1 MSCs/cm 2 , p
ISSN:1937-3341
1937-335X
DOI:10.1089/ten.tea.2010.0539