Assessment of scaffold porosity: the new route of micro-CT.

Serena Bertoldi, Silvia Farè, Maria Cristina Tanzi
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引用次数: 47

Abstract

A complete morphologic characterization of porous scaffolds for tissue engineering application is fundamental, as the architectural parameters, in particular porosity, strongly affect the mechanical and biological performance of the structures. Therefore, appropriate techniques for this purpose need to be selected. Several techniques for the assessment of scaffold porosity have been proposed, including Scanning Electron Microscopy observation, mercury and liquid extrusion porosimetry, gas pycnometry, and capillary flow porometry. Each of these techniques has several drawbacks and, a combination of different techniques is often required so as to achieve an in depth study of the morphologic properties of the scaffold. A single technique is often limited and suitable only for the assessment of a specific parameter. To overcome this limit, the most attractive option would be a single nondestructive technique, yet capable of providing a comprehensive set of data. It appears that micro-computed tomography (micro-CT) can potentially fulfill this role. Initially developed to characterize the 3D trabecular microarchitecture of bone, its use has been recently exploited by researchers for the morphologic characterization of porous biomaterials, as it enables obtaining a full assessment of the porous structures both in terms of pore size and interconnected porosity. This review aims to explore the use of micro-CT in scaffold characterization, comparing it with other previously developed techniques; we also focus on the contribution of this innovative tool to the development of scaffold-based tissue engineering application.

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支架孔隙度评估:微ct的新途径。
完整的多孔支架形态学表征是组织工程应用的基础,因为结构参数,特别是孔隙率,强烈影响结构的力学和生物性能。因此,需要为此选择适当的技术。已经提出了几种评估支架孔隙度的技术,包括扫描电子显微镜观察,汞和液体挤压孔隙度法,气体比重法和毛细管流动孔隙度法。这些技术中的每一种都有一些缺点,并且通常需要不同技术的组合,以便实现对支架形态特性的深入研究。单一的技术往往是有限的,只适用于评估一个特定的参数。为了克服这一限制,最具吸引力的选择将是一种单一的非破坏性技术,但能够提供一套全面的数据。微型计算机断层扫描(micro-CT)似乎可以潜在地完成这一角色。最初用于表征骨的3D小梁微结构,最近被研究人员用于多孔生物材料的形态表征,因为它可以从孔径和相互连接的孔隙度方面获得多孔结构的全面评估。本综述旨在探讨微ct在支架表征中的应用,并将其与其他先前开发的技术进行比较;我们还关注了这一创新工具对基于支架的组织工程应用的发展的贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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审稿时长
12 months
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