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用于工程各向异性组织的结构纤维支架。

Architected fibrous scaffolds for engineering anisotropic tissues.

机构信息

Institure for Bioengineering, School of Engineering, The University of Edinburgh, Edinburgh, United Kingdom.

Center for Biomedical Engineering, Brown University, Providence, RI 02912, United States of America.

出版信息

Biofabrication. 2021 Jul 27;13(4). doi: 10.1088/1758-5090/ac0fc9.

Abstract

Mimicking the native three-dimensional microenvironment is of crucial importance when biofabricating a new healthcare material. One aspect of the native tissue that is often omitted when designing a suitable scaffold is its anisotropy. Not only is matching native mechanical properties important when designing implantable scaffolds or healthcare materials, but matching physiological structure is also important as many cell populations respond differently to fiber orientation. Therefore, novel aligned electrospun scaffolds with varying fiber angles and spacing of bundles were created and mechanically characterized. Through controlling the angle between the fibers in each layer of the scaffold, a range of different physiological anisotropic mechanical properties were achieved that encompasses values found in native tissues. Extrapolation of this mechanical data allowed for any native tissue's anisotropic Young's modulus to be mimicked by electrospinning fibers at a particular angle. These electrospun scaffolds were then incorporated with cell-laden hydrogels to create hybrid structures that contain the benefits of both scaffolding techniques with the ability to encapsulate cells in the hydrogel. To conclude, this study develops a novel bundled fiber scaffold that was architected to yield anisotropic properties matching native tissues.

摘要

在生物制造新型医疗材料时,模拟天然的三维微环境至关重要。在设计合适的支架时,经常会忽略天然组织的一个方面,即各向异性。当设计可植入支架或医疗材料时,匹配天然机械性能很重要,但匹配生理结构也很重要,因为许多细胞群体对纤维方向的反应不同。因此,创建了具有不同纤维角度和纤维束间距的新型各向异性静电纺丝支架,并对其进行了机械特性表征。通过控制支架每层纤维之间的角度,可以获得一系列不同的生理各向异性机械性能,这些性能涵盖了天然组织中的值。通过对这种机械数据进行推断,可以通过以特定角度静电纺丝纤维来模拟任何天然组织的各向异性杨氏模量。然后,将这些静电纺丝支架与细胞负载水凝胶结合,创建具有两种支架技术优势的混合结构,并能够将细胞封装在水凝胶中。总之,本研究开发了一种新型的纤维束支架,其设计旨在产生与天然组织相匹配的各向异性性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c6aa/8686077/ad5874b4c88b/nihms-1761523-f0001.jpg

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