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定量描述细胞产生的力下 3D 生物打印结构的特性。

Quantitative characterization of 3D bioprinted structural elements under cell generated forces.

机构信息

University of Florida, Herbert Wertheim College of Engineering, Department of Mechanical and Aerospace Engineering, Gainesville, FL, 32611, USA.

University of Florida, Herbert Wertheim College of Engineering, Department of Materials Science and Engineering, Gainesville, FL, 32611, USA.

出版信息

Nat Commun. 2019 Jul 10;10(1):3029. doi: 10.1038/s41467-019-10919-1.

Abstract

With improving biofabrication technology, 3D bioprinted constructs increasingly resemble real tissues. However, the fundamental principles describing how cell-generated forces within these constructs drive deformations, mechanical instabilities, and structural failures have not been established, even for basic biofabricated building blocks. Here we investigate mechanical behaviours of 3D printed microbeams made from living cells and extracellular matrix, bioprinting these simple structural elements into a 3D culture medium made from packed microgels, creating a mechanically controlled environment that allows the beams to evolve under cell-generated forces. By varying the properties of the beams and the surrounding microgel medium, we explore the mechanical behaviours exhibited by these structures. We observe buckling, axial contraction, failure, and total static stability, and we develop mechanical models of cell-ECM microbeam mechanics. We envision these models and their generalizations to other fundamental 3D shapes to facilitate the predictable design of biofabricated structures using simple building blocks in the future.

摘要

随着生物制造技术的不断进步,3D 生物打印构建体越来越接近真实组织。然而,即使对于基本的生物制造构建体,描述细胞在这些构建体中产生的力如何驱动变形、力学不稳定性和结构失效的基本原理尚未建立。在这里,我们研究了由活细胞和细胞外基质制成的 3D 打印微梁的力学行为,将这些简单的结构元件生物打印到由微凝胶填充的 3D 培养基中,创建了一个机械可控的环境,使梁在细胞产生的力作用下发生演变。通过改变梁和周围微凝胶介质的特性,我们探索了这些结构表现出的力学行为。我们观察到屈曲、轴向收缩、失效和整体静态稳定性,并开发了细胞-ECM 微梁力学的力学模型。我们设想这些模型及其对其他基本 3D 形状的推广,以便在未来使用简单的构建块来可预测地设计生物制造结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f040/6620298/4679ed5523b7/41467_2019_10919_Fig1_HTML.jpg

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