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化学和物理性能对 3D 打印高分辨率聚(富马酸丙二醇酯)支架体外降解的影响。

Effect of Chemical and Physical Properties on the In Vitro Degradation of 3D Printed High Resolution Poly(propylene fumarate) Scaffolds.

机构信息

The Ohio State University , Department of Plastic Surgery, 460 West 12th Avenue, Room 388, Columbus, Ohio 43210, United States.

Youngstown State University , Department of Mechanical and Industrial Engineering, 1 University Plaza, Youngstown, Ohio 44555, United States.

出版信息

Biomacromolecules. 2017 Apr 10;18(4):1419-1425. doi: 10.1021/acs.biomac.7b00146. Epub 2017 Mar 28.

Abstract

Two distinct molecular masses of poly(propylene fumarate) (PPF) are combined with an additive manufacturing process to fabricate highly complex scaffolds possessing controlled chemical properties and porous architecture. Scaffolds were manufactured with two polymer molecular masses and two architecture styles. Degradation was assessed in an accelerated in vitro environment. The purpose of the degradation study is not to model or mimic in vivo degradation, but to efficiently compare the effect of modulating scaffold properties. This is the first study addressing degradation of chain-growth synthesized PPF, a process that allows for considerably more control over molecular mass distribution. It demonstrates that, with greater process control, not only is scaffold fabrication reproducible, but the mechanical properties and degradation kinetics can be tailored by altering the physical properties of the scaffold. This is a clear step forward in using PPF to address unmet medical needs while meeting regulatory demands and ultimately obtaining clinical relevancy.

摘要

两种不同分子量的聚(富马酸丙二醇酯)(PPF)通过添加剂制造工艺结合在一起,制造具有可控化学性质和多孔结构的高度复杂支架。支架采用两种聚合物分子量和两种结构样式制造。在加速的体外环境中评估降解。降解研究的目的不是模拟或模拟体内降解,而是有效地比较调节支架性能的效果。这是第一项研究链增长合成的 PPF 降解的研究,该过程可以对分子量分布进行更精细的控制。它表明,通过更好的过程控制,不仅支架制造具有可重复性,而且可以通过改变支架的物理性质来定制机械性能和降解动力学。这是在使用 PPF 来满足未满足的医疗需求的同时满足监管要求并最终获得临床相关性方面向前迈出的重要一步。

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