Courtney Todd, Sacks Michael S, Stankus John, Guan Jianjun, Wagner William R
Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA 15219, USA.
Biomaterials. 2006 Jul;27(19):3631-8. doi: 10.1016/j.biomaterials.2006.02.024. Epub 2006 Mar 20.
Tissue engineered constructs must exhibit tissue-like functional properties, including mechanical behavior comparable to the native tissues they are intended to replace. Moreover, the ability to reversibly undergo large strains can help to promote and guide tissue growth. Electrospun poly (ester urethane) ureas (ES-PEUU) are elastomeric and allow for the control of fiber diameter, porosity, and degradation rate. ES-PEUU scaffolds can be fabricated to have a well-aligned fiber network, which is important for applications involving mechanically anisotropic soft tissues. We have developed ES-PEUU scaffolds under variable speed conditions and modeled the effects of fiber orientation on the macro-mechanical properties of the scaffold. To illustrate the ability to simulate native tissue mechanical behavior, we demonstrated that the high velocity spun scaffolds exhibited highly anisotropic mechanical properties closely resembling the native pulmonary heart valve leaflet. Moreover, use of the present fiber-level structural constitutive model allows for the determination of electrospinning conditions to tailor ES-PEUU scaffolds for specific soft tissue applications. The results of this study will help to provide the basis for rationally designed mechanically anisotropic soft tissue engineered implants.
组织工程构建体必须展现出类似组织的功能特性,包括与它们打算替代的天然组织相当的力学行为。此外,能够可逆地承受大应变有助于促进和引导组织生长。静电纺聚(酯脲)脲(ES-PEUU)具有弹性,并且能够控制纤维直径、孔隙率和降解速率。ES-PEUU支架可以制成具有排列良好的纤维网络,这对于涉及机械各向异性软组织的应用很重要。我们在变速条件下开发了ES-PEUU支架,并对纤维取向对支架宏观力学性能的影响进行了建模。为了说明模拟天然组织力学行为的能力,我们证明高速纺丝支架表现出高度各向异性的力学性能,与天然肺动脉瓣小叶非常相似。此外,使用当前的纤维水平结构本构模型可以确定静电纺丝条件,以针对特定软组织应用定制ES-PEUU支架。这项研究的结果将有助于为合理设计机械各向异性软组织工程植入物提供基础。