Start Publications Electrospun gelatin/PCL and collagen/PLCL scaffolds for ...
Attension

Electrospun gelatin/PCL and collagen/PLCL scaffolds for vascular tissue engineering

Year: 2014

Journal: INTERNATIONAL JOURNAL OF NANOMEDICINE, Vol. 9, p 2335-2344, 20150722

Authors: Fu, Wei; Liu, Zhenling; Feng, Bei; Hu, Renjie; He, Xiaomin; Wang, Hao; Yin, Meng; Huang, Huimin; Zhang, Haibo; Wang, Wei

Organizations: Shanghai Jiao Tong Univ, Sch Med, Shanghai Childrens Med Ctr, Dept Pediat Cardiothorac Surg, Shanghai 200127, Peoples R China; Shanghai Jiao Tong Univ, Sch Med, Shanghai Childrens Med Ctr, Inst Pediat Translat Med, Shanghai 200127, Peoples R China

Electrospun hybrid nanofibers prepared using combinations of natural and synthetic polymers have been widely investigated in cardiovascular tissue engineering. In this study, electrospun gelatin/polycaprolactone (PCL) and collagen/poly(l-lactic acid-co-epsilon-caprolactone) (PLCL) scaffolds were successfully produced. Scanning electron micrographs showed that fibers of both membranes were smooth and homogeneous. Water contact angle measurements further demonstrated that both scaffolds were hydrophilic. To determine cell attachment and migration on the scaffolds, both hybrid scaffolds were seeded with human umbilical arterial smooth muscle cells. Scanning electron micrographs and MTT assays showed that the cells grew and proliferated well on both hybrid scaffolds. Gross observation of the transplanted scaffolds revealed that the engineered collagen/PLCL scaffolds were smoother and brighter than the gelatin/PCL scaffolds. Hematoxylin and eosin staining showed that the engineered blood vessels constructed by collagen/PLCL electrospun membranes formed relatively homogenous vessel-like tissues. Interestingly, Young's modulus for the engineered collagen/PLCL scaffolds was greater than for the gelatin/PCL scaffolds. Together, these results indicate that nanofibrous collagen/PLCL membranes with favorable mechanical and biological properties may be a desirable scaffold for vascular tissue engineering.