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Laser Microfabricated Poly(glycerol Sebacate) Scaffolds for Heart Valve Tissue Engineering

机译:用于心脏瓣膜组织工程的激光微制造聚(甘油癸二酸酯)支架

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摘要

Microfabricated poly(glycerol sebacate) (PGS) scaffolds may be applicable to tissue engineering heart valve leaflets by virtue of their controllable microstructure, stiffness, and elasticity. In the current study, PGS scaffolds were computationally designed and microfabricated by laser ablation to match the anisotropy and peak tangent moduli of native bovine aortic heart valve leaflets. Finite element simulations predicted PGS curing conditions, scaffold pore shape, and strut width capable of matching the scaffold effective stiffnesses to the leaflet peak tangent moduli. Based on simulation predicted effective stiffnesses of 1.041 MPa and 0.208 MPa for the scaffold preferred (PD) and orthogonal, cross-preferred (XD) material directions, scaffolds with diamond-shaped pores were microfabricated by laser ablation of PGS cured 12 hours at 160°C. Effective stiffnesses measured for the scaffold PD (0.83 ± 0.13 MPa) and XD (0.21 ± 0.03 MPa) were similar to both predicted values and peak tangent moduli measured for bovine aortic valve leaflets in the circumferential (1.00 ± 0.16 MPa) and radial (0.26 ± 0.03 MPa) directions. Scaffolds cultivated with fibroblasts for 3 weeks accumulated collagen (736 ± 193 μg/g wet weight) and DNA (17 ± 4 μg/g wet weight). This study provides a basis for the computational design of biomimetic microfabricated PGS scaffolds for tissue engineered heart valves.
机译:微型制造的聚癸二酸甘油酯(PGS)支架由于其可控制的微观结构,刚度和弹性而可用于组织工程心脏瓣膜小叶。在当前的研究中,PGS支架是通过计算设计并通过激光消融进行微加工,以匹配天然牛主动脉瓣膜小叶的各向异性和峰值切线模量。有限元模拟预测了PGS的固化条件,支架孔的形状和支杆宽度,能够使支架的有效刚度与小叶峰切线模量匹配。根据模拟预测的支架优先(PD)和正交,交叉优先(XD)材料方向的有效刚度为1.041 MPa和0.208 MPa,通过激光烧蚀PGS在160°C固化12小时来微加工具有菱形孔的支架C。支架PD(0.83±0.13 MPa)和XD(0.21±0.03 MPa)测得的有效刚度与牛主动脉瓣小叶在圆周(1.00±0.16 MPa)和径向(0.26)的预测值和切线模量峰值相似±0.03 MPa)方向。用成纤维细胞培养3周的支架积累了胶原蛋白(736±193μg/ g湿重)和DNA(17±4μg/ g湿重)。该研究为组织工程化心脏瓣膜的仿生微加工PGS支架的计算设计提供了基础。

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