罗亚
法苏迪尔
血管生成
川地31
细胞生物学
内皮干细胞
Rho相关蛋白激酶
癌症研究
Rho激酶抑制剂
信号转导
化学
应力纤维
肌动蛋白细胞骨架
药理学
生物
焦点粘着
细胞骨架
体外
生物化学
细胞
作者
Behnaz Lahooti,Racheal G. Akwii,Dhaval Patel,Siavash ShahbaziNia,Μαργαρίτα Λάμπρου,Mahboubeh Madadi,Thomas J. Abbruscato,Aristotelis Astrinidis,Ulrich Bickel,Abraham Al‐Ahmad,Nadezhda German,George Mattheolabakis,Constantinos M. Mikelis
标识
DOI:10.1124/jpet.122.001384
摘要
Existing vascular endothelial growth factor–oriented antiangiogenic approaches are known for their high potency. However, significant side effects associated with their use drive the need for novel antiangiogenic strategies. The small GTPase RhoA is an established regulator of actin cytoskeletal dynamics. Previous studies have highlighted the impact of endothelial RhoA pathway on angiogenesis. Rho-associate kinase (ROCK), a direct RhoA effector, is potently inhibited by Fasudil, a clinically relevant ROCK inhibitor. Here, we aimed to target the RhoA signaling in endothelial cells by generating Fasudil-encapsulated CD31-targeting liposomes as a potential antiangiogenic therapy. The liposomes presented desirable characteristics, preferential binding to CD31-expressing HEK293T cells and to endothelial cells, inhibited stress fiber formation and cytoskeletal-related morphometric parameters, and inhibited in vitro angiogenic functions. Overall, this work shows that the nanodelivery-mediated endothelial targeting of RhoA signaling can offer a promising strategy for angiogenesis inhibition in vascular-related diseases.
SIGNIFICANCE STATEMENT
Systemic administration of antiangiogenic therapeutics induces side effects to non-targeted tissues. This study, among others, has shown the impact of the RhoA signaling in the endothelial cells and their angiogenic functions. Here, to minimize potential toxicity, this study generated CD31-targeting liposomes with encapsulated Fasudil, a clinically relevant Rho kinase inhibitor, and successfully targeted endothelial cells. In this proof-of-principle study, the efficient Fasudil delivery, its impact on the endothelial signaling, morphometric alterations, and angiogenic functions verify the benefits of site-targeted antiangiogenic therapy.
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