首页 | 本学科首页   官方微博 | 高级检索  
检索        


Viscoelastic evaluation of fetal umbilical vein for reconstruction of middle cerebral artery
Authors:Dongyuan Li;Donghui Xu;Peng Li;Jun Wei;Kun Yang;Conghai Zhao;
Institution:Dongyuan Li;Donghui Xu;Peng Li;Jun Wei;Kun Yang;Conghai Zhao;Department of Neurosurgery,China-Japan Friendship Hospital,Jilin University;Department of Engineering Mechanics,Nanling Branch,Jilin University;Basic Department,Air Force Aviation University;
Abstract:The transplantation of artificial blood vessels with < 6 mm inner diameter as substitutes for human arterioles or veins has not achieved satisfactory results. Umbilical vein has been substituted for ar-tery in vascular transplantation, but it remains unclear whether the stress relaxation and creep tween these vessels are consistent. In this study, we used the fetal umbilical vein and middle cere-bral artery from adult male cadavers to make specimens 15 mm in length, 0.196–0.268 mm in nica media thickness, and 2.82–2.96 mm in outer diameter. The results demonstrated that the stress decrease at 7 200 seconds was similar between the middle cerebral artery and fetal umbilical vein specimens, regardless of initial stress of 18.7 kPa or 22.5 kPa. However, the strain increase at 7 200 seconds of fetal umbilical veins was larger than that of middle cerebral arteries. Moreover, the stress relaxation experiment showed that the stress decrease at 7 200 seconds of the fetal umbilical vein and middle cerebral artery specimens under 22.5 kPa initial stress was less than the decrease in these specimens under 18.7 kPa initial stress. These results indicate that the fetal umbilical vein has appropriate stress relaxation and creep properties for transplantation. These properties are advantageous for vascular reconstruction, indicating that the fetal umbilical vein can be transplanted to repair middle cerebral artery injury.
Keywords:neural regeneration  neural plasticity  middle cerebral artery  fetal umbilical vein  stress relaxationproperties  creep properties  viscoelasticity  transplantation  biomaterial  biomechanics  neuroregeneration
本文献已被 CNKI 维普 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号