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全新3D生物打印全尺寸人类心脏模型。

FRESH 3D Bioprinting a Full-Size Model of the Human Heart.

作者信息

Mirdamadi Eman, Tashman Joshua W, Shiwarski Daniel J, Palchesko Rachelle N, Feinberg Adam W

机构信息

Department of Biomedical Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, Pennsylvania 15213, United States.

Department of Materials Science & Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, Pennsylvania 15213, United States.

出版信息

ACS Biomater Sci Eng. 2020 Nov 9;6(11):6453-6459. doi: 10.1021/acsbiomaterials.0c01133. Epub 2020 Oct 23.

Abstract

Recent advances in embedded three-dimensional (3D) bioprinting have expanded the design space for fabricating geometrically complex tissue scaffolds using hydrogels with mechanical properties comparable to native tissues and organs in the human body. The advantage of approaches such as Freeform Reversible Embedding of Suspended Hydrogels (FRESH) printing is the ability to embed soft biomaterials in a thermoreversible support bath at sizes ranging from a few millimeters to centimeters. In this study, we were able to expand this printable size range by FRESH bioprinting a full-size model of an adult human heart from patient-derived magnetic resonance imaging (MRI) data sets. We used alginate as the printing biomaterial to mimic the elastic modulus of cardiac tissue. In addition to achieving high print fidelity on a low-cost printer platform, FRESH-printed alginate proved to create mechanically tunable and suturable models. This demonstrates that large-scale 3D bioprinting of soft hydrogels is possible using FRESH and that cardiac tissue constructs can be produced with potential future applications in surgical training and planning.

摘要

嵌入式三维(3D)生物打印技术的最新进展拓宽了设计空间,能够使用与人体天然组织和器官机械性能相当的水凝胶制造几何形状复杂的组织支架。诸如悬浮水凝胶自由形式可逆嵌入(FRESH)打印等方法的优势在于,能够将柔软的生物材料嵌入尺寸从几毫米到几厘米不等的热可逆支撑浴中。在本研究中,我们通过利用患者来源的磁共振成像(MRI)数据集,采用FRESH生物打印技术制作了一个全尺寸成人心脏模型,从而扩大了这种可打印的尺寸范围。我们使用藻酸盐作为打印生物材料来模拟心脏组织的弹性模量。除了在低成本打印机平台上实现高打印保真度外,FRESH打印的藻酸盐还被证明能够创建机械性能可调且可缝合的模型。这表明使用FRESH技术进行软质水凝胶的大规模3D生物打印是可行的,并且可以制造出心脏组织构建体,在未来的手术培训和规划中具有潜在应用价值。

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