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用于食管组织工程的熔喷支架的表征、力学行为及体外评价

Characterization, mechanical behavior and in vitro evaluation of a melt-drawn scaffold for esophageal tissue engineering.

作者信息

Tan Yu Jun, Yeong Wai Yee, Tan Xipeng, An Jia, Chian Kerm Sin, Leong Kah Fai

机构信息

Singapore Centre for 3D Printing, School of Mechanical & Aerospace Engineering, Nanyang Technological University, HW1-01-05, 2A Nanyang Link, Singapore 637372, Singapore.

Singapore Centre for 3D Printing, School of Mechanical & Aerospace Engineering, Nanyang Technological University, HW1-01-05, 2A Nanyang Link, Singapore 637372, Singapore.

出版信息

J Mech Behav Biomed Mater. 2016 Apr;57:246-59. doi: 10.1016/j.jmbbm.2015.12.015. Epub 2015 Dec 21.

Abstract

Tubular esophageal scaffolds with fiber diameter ranging from 13.9±1.7μm to 65.7±6.2μm were fabricated from the highly elastic poly(l-lactide-co-ε-caprolactone) (PLC) via a melt-drawing method. The morphology, crystallinity, thermal and mechanical properties of the PLC fibers were investigated. They were highly aligned and have a uniform diameter. PLC is found to be semicrystalline consisting of α- and β- lactide (LA) crystals. The crystallinity increases up to 16.8% with increasing melt-drawing speeds due to strain-induced crystallization. Modulus and strength increases while ductility decreases with an increase in crystallinity of the PLC samples. Moisture will not degrade the overall tensile properties but affect its tangent modulus at the low strain. L929 cells are able to attach and proliferate on the scaffolds very well. The cells seeded on the scaffolds show normal morphology with >90% cell viability after 6 days of culture. These results demonstrate that the PLC fibrous scaffold has good potential for use in esophageal tissue engineering application.

摘要

采用熔体拉伸法,由高弹性聚(L-丙交酯-共-ε-己内酯)(PLC)制备了纤维直径范围为13.9±1.7μm至65.7±6.2μm的管状食管支架。研究了PLC纤维的形态、结晶度、热性能和力学性能。它们高度取向且直径均匀。发现PLC是由α-和β-丙交酯(LA)晶体组成的半结晶材料。由于应变诱导结晶,随着熔体拉伸速度的增加,结晶度增加至16.8%。随着PLC样品结晶度的增加,模量和强度增加,而延展性降低。水分不会降低整体拉伸性能,但会影响其在低应变下的切线模量。L929细胞能够在支架上很好地附着和增殖。接种在支架上的细胞在培养6天后显示出正常形态,细胞活力>90%。这些结果表明,PLC纤维支架在食管组织工程应用中具有良好的潜力。

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