Back to Search Start Over

A paradigm of endothelium-protective and stent-free anti-restenotic therapy using biomimetic nanoclusters.

Authors :
Wang, Bowen
Chen, Guojun
Urabe, Go
Xie, Ruosen
Wang, Yuyuan
Shi, Xudong
Guo, Lian-Wang
Gong, Shaoqin
Kent, K. Craig
Source :
Biomaterials. Sep2018, Vol. 178, p293-301. 9p.
Publication Year :
2018

Abstract

Drug-eluting stents are the most commonly employed method to control post-angioplasty restenosis. Unfortunately, they exacerbate life-threatening stent thrombosis because of endothelium damage caused by both drug and stenting. To solve this major medical problem, an endothelium-protective and stent-free anti -restenotic method is highly desirable. Here we have generated a biomimetic intravenous delivery system using dendritic polymer-based nanoclusters, which were coated with platelet membranes for targeting to the injured arterial wall where restenosis occurs. These nanoclusters were loaded with an endothelium-protective epigenetic inhibitor (JQ1) or an endothelium-toxic status quo drug (rapamycin), and compared for their ability to mitigate restenosis without hindering the process of re-endothelialization. Fluorescence imaging of Cy5-tagged biomimetic nanoclusters indicated their robust homing to injured, but not uninjured arteries. Two weeks after angioplasty, compared to no-drug control, both rapamycin- and JQ1-loaded biomimetic nanoclusters substantially reduced (by >60%) neointimal hyperplasia, the primary cause of restenosis. However, whereas the rapamycin formulation impaired the endothelial re-coverage of the denuded inner arterial wall, the JQ1 formulation preserved endothelial recovery. In summary, we have created an endothelium-protective anti -restenotic system with biomimetic nanoclusters containing an epigenetic inhibitor. This system warrants further development for a non-thrombogenic and stent-free method for clinical applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01429612
Volume :
178
Database :
Academic Search Index
Journal :
Biomaterials
Publication Type :
Academic Journal
Accession number :
130764988
Full Text :
https://doi.org/10.1016/j.biomaterials.2018.06.025