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基于机械超材料生成的结构化间充质微组织的重塑

Remodeling of Architected Mesenchymal Microtissues Generated on Mechanical Metamaterials.

作者信息

Wang Chenyan, Vangelatos Zacharias, Winston Tackla, Sun Shiyang, Grigoropoulos Costas P, Ma Zhen

机构信息

Department of Biomedical and Chemical Engineering, Syracuse University, Syracuse, New York, USA.

BioInspired Syracuse Institute for Material and Living Systems, Syracuse University, Syracuse, New York, USA.

出版信息

3D Print Addit Manuf. 2022 Dec 1;9(6):483-489. doi: 10.1089/3dp.2021.0091. Epub 2022 Dec 13.

Abstract

Mechanical metamaterials constitute a nascent category of architected structures comprising arranged periodic components with tailored geometrical features. These materials are now being employed as advanced medical implants due to their extraordinary mechanical properties over traditional devices. Nevertheless, to achieve desired tissue integration and regeneration, it is critical to study how the microarchitecture affects interactions between metamaterial scaffolds and living biological tissues. Based on human induced pluripotent stem cell technology and multiphoton lithography, we report the establishment of an microtissue model to study the integration and remodeling of human mesenchymal tissues on metamaterial scaffolds with different unit geometries. Microtissues showed distinct tissue morphologies and cellular behaviors between architected octet-truss and bowtie structures. Under the active force generated from mesenchymal tissues, the octet-truss and bowtie metamaterial scaffolds demonstrated unique instability phenomena, significantly different from uniform loading using conventional mechanical testing.

摘要

机械超材料是一种新兴的结构设计材料,由具有定制几何特征的排列周期性组件组成。由于其相对于传统装置具有非凡的机械性能,这些材料现在正被用作先进的医疗植入物。然而,为了实现所需的组织整合和再生,研究微观结构如何影响超材料支架与活生物组织之间的相互作用至关重要。基于人类诱导多能干细胞技术和多光子光刻,我们报告建立了一个微组织模型,以研究具有不同单元几何形状的超材料支架上人间充质组织的整合和重塑。微组织在设计的八面体桁架结构和领结结构之间表现出明显不同的组织形态和细胞行为。在间充质组织产生的主动力作用下,八面体桁架和领结超材料支架表现出独特的不稳定性现象,这与使用传统力学测试的均匀加载有显著差异。

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The use of auxetic materials in tissue engineering.在组织工程中使用超材料。
Biomater Sci. 2020 Apr 21;8(8):2074-2083. doi: 10.1039/c9bm01928f. Epub 2020 Mar 26.

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