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用于心脏各向异性组织工程的手风琴状蜂窝结构。

Accordion-like honeycombs for tissue engineering of cardiac anisotropy.

作者信息

Engelmayr George C, Cheng Mingyu, Bettinger Christopher J, Borenstein Jeffrey T, Langer Robert, Freed Lisa E

机构信息

Harvard-MIT Division of Health Sciences and Technology, Massachusetts Institute of Technology, 77 Massachusetts Avenue, E25-330 Cambridge, Massachusetts 02139, USA.

出版信息

Nat Mater. 2008 Dec;7(12):1003-10. doi: 10.1038/nmat2316. Epub 2008 Nov 2.

Abstract

Tissue-engineered grafts may be useful in myocardial repair; however, previous scaffolds have been structurally incompatible with recapitulating cardiac anisotropy. Here, we use microfabrication techniques to create an accordion-like honeycomb microstructure in poly(glycerol sebacate), which yields porous, elastomeric three-dimensional (3D) scaffolds with controllable stiffness and anisotropy. Accordion-like honeycomb scaffolds with cultured neonatal rat heart cells demonstrated utility through: (1) closely matched mechanical properties compared to native adult rat right ventricular myocardium, with stiffnesses controlled by polymer curing time; (2) heart cell contractility inducible by electric field stimulation with directionally dependent electrical excitation thresholds (p<0.05); and (3) greater heart cell alignment (p<0.0001) than isotropic control scaffolds. Prototype bilaminar scaffolds with 3D interconnected pore networks yielded electrically excitable grafts with multi-layered neonatal rat heart cells. Accordion-like honeycombs can thus overcome principal structural-mechanical limitations of previous scaffolds, promoting the formation of grafts with aligned heart cells and mechanical properties more closely resembling native myocardium.

摘要

组织工程移植物可能对心肌修复有用;然而,先前的支架在结构上与重现心脏各向异性不兼容。在这里,我们使用微制造技术在聚癸二酸甘油酯中创建一种手风琴状蜂窝微结构,从而产生具有可控刚度和各向异性的多孔、弹性体三维(3D)支架。培养新生大鼠心脏细胞的手风琴状蜂窝支架通过以下方面展示了其效用:(1)与成年大鼠右心室心肌相比,机械性能紧密匹配,刚度由聚合物固化时间控制;(2)电场刺激可诱导心脏细胞收缩,且电刺激阈值具有方向依赖性(p<0.05);(3)与各向同性对照支架相比,心脏细胞排列更整齐(p<0.0001)。具有3D互连孔网络的原型双层支架产生了具有多层新生大鼠心脏细胞的电兴奋性移植物。因此,手风琴状蜂窝可以克服先前支架的主要结构力学限制,促进形成具有排列整齐的心脏细胞且机械性能更接近天然心肌的移植物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/057f/2613200/b723e7da7fc2/nihms72112f1.jpg

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