TY - JOUR
T1 - Performance of a multilayered small-diameter vascular scaffold dual-loaded with VEGF and PDGF
AU - Han, Fengxuan
AU - Jia, Xiaoling
AU - Dai, Dongdong
AU - Yang, Xiaoling
AU - Zhao, Jin
AU - Zhao, Yunhui
AU - Fan, Yubo
AU - Yuan, Xiaoyan
PY - 2013/10
Y1 - 2013/10
N2 - The urgent needs of functional arterial replacements for curing the vascular system diseases have been proposed for many years. However, an ideal small-diameter vascular scaffold, which is nonthrombogenic, minimizes intimal hyperplasia, matches the mechanical properties of natural vessels, and supports neovascular tissue reconstruction, is still in progress. For this purpose, we previously attempted dual-delivery of VEGF and PDGF by double-layered electrospun membranes. Here, a multilayered vascular scaffold in 1.5-mm diameter with sufficient mechanical properties was developed by electrospinning from poly(ethylene glycol)-. b-poly(l-lactide-. co-ε-caprolactone) (PELCL), poly(l-lactide-. co-glycolide) (PLGA), poly(ε-caprolactone) (PCL) and gelatin. Spatio-temporal releases of vascular endothelial growth factor (VEGF) and platelet-derived growth factor-bb (PDGF) were specially controlled by the inner PELCL and middle PLGA layers, respectively, and the outer PCL layer contributed to the mechanical stability. Introduction of gelatin improved vascular endothelial cells adhesion at first, and loosen membrane after its degradation facilitated vascular smooth muscle cells (VSMCs) ingrowth. Cell activities indicated dual release of growth factors promoted endothelialization and inhibited VSMCs hyperproliferation. The small-diameter vascular scaffold dual-loading VEGF and PDGF could maintain patency in rabbit left common carotid artery for 8 weeks. It is concluded that the specially prepared fibrous scaffold in multilayer could benefit blood vessel reconstruction.
AB - The urgent needs of functional arterial replacements for curing the vascular system diseases have been proposed for many years. However, an ideal small-diameter vascular scaffold, which is nonthrombogenic, minimizes intimal hyperplasia, matches the mechanical properties of natural vessels, and supports neovascular tissue reconstruction, is still in progress. For this purpose, we previously attempted dual-delivery of VEGF and PDGF by double-layered electrospun membranes. Here, a multilayered vascular scaffold in 1.5-mm diameter with sufficient mechanical properties was developed by electrospinning from poly(ethylene glycol)-. b-poly(l-lactide-. co-ε-caprolactone) (PELCL), poly(l-lactide-. co-glycolide) (PLGA), poly(ε-caprolactone) (PCL) and gelatin. Spatio-temporal releases of vascular endothelial growth factor (VEGF) and platelet-derived growth factor-bb (PDGF) were specially controlled by the inner PELCL and middle PLGA layers, respectively, and the outer PCL layer contributed to the mechanical stability. Introduction of gelatin improved vascular endothelial cells adhesion at first, and loosen membrane after its degradation facilitated vascular smooth muscle cells (VSMCs) ingrowth. Cell activities indicated dual release of growth factors promoted endothelialization and inhibited VSMCs hyperproliferation. The small-diameter vascular scaffold dual-loading VEGF and PDGF could maintain patency in rabbit left common carotid artery for 8 weeks. It is concluded that the specially prepared fibrous scaffold in multilayer could benefit blood vessel reconstruction.
KW - Dual-delivery
KW - Mechanical characterizations
KW - Platelet derived growth factor
KW - Small diameter vascular scaffold
KW - Vascular endothelial growth factor
UR - https://www.scopus.com/pages/publications/84880509066
U2 - 10.1016/j.biomaterials.2013.06.006
DO - 10.1016/j.biomaterials.2013.06.006
M3 - 文章
C2 - 23830580
AN - SCOPUS:84880509066
SN - 0142-9612
VL - 34
SP - 7302
EP - 7313
JO - Biomaterials
JF - Biomaterials
IS - 30
ER -