Bio-Rapid-Prototyping of Tissue Engineering Scaffolds and the Process-Induced Cell Damage

X. Tian, M. Li, Xiongbaio Chen
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引用次数: 7

Abstract

Tissue scaffolds play a vital role in tissue engineering by providing a native tissue-mimicking environment for cell proliferation and differentiation as well as tissue regeneration. Fabrication of tissue scaffolds has been drawing increasing research attention and a number of fabrication techniques have been developed. To better mimic the microenvironment of native tissues, novel techniques have emerged in recent years to encapsulate cells into the engineered scaffolds during the scaffold fabrication process. Among them, bio-Rapid-Prototyping (bioRP) techniques, by which scaffolds with encapsulated cells can be fabricated with controlled internal microstructure and external shape, shows significant promise. It is noted in the bioRP processes, cells may be continuously subjected to environmental stresses such as mechanical, electrical forces and laser exposure. If the stress is greater than a certain level, the cell membrane may be ruptured, leading to the so-called process-induced cell damage. This paper reviews various cell encapsulation techniques for tissue scaffold fabrication, with emphasis on the bioRP technologies and their technical features. To understand the process-induced cell damage in the bioRP processes, this paper also surveys the cell damage mechanisms under different stresses. The process-induced cell damage models are also examined to provide a cue to the cell viability preservation in the fabrication process. Discussions on further improvements of bioRP technologies are given and ongoing research into mechanical cell damage mechanism are also suggested in this review.
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组织工程支架的生物快速成型及过程性细胞损伤
组织支架为细胞增殖、分化和组织再生提供了天然的组织模拟环境,在组织工程中发挥着重要作用。组织支架的制备已引起越来越多的研究关注,并开发了许多制备技术。为了更好地模拟原生组织的微环境,近年来出现了在支架制造过程中将细胞包裹到工程支架中的新技术。其中,生物快速成型技术(biorapid - prototyping, bioRP)显示出巨大的发展前景,该技术可以制造出具有内部微观结构和外部形状可控的包裹细胞支架。在生物orp过程中,细胞可能持续受到环境应力,如机械、电力和激光照射。如果应力大于一定水平,细胞膜可能破裂,导致所谓的过程性细胞损伤。本文综述了用于组织支架制造的各种细胞包封技术,重点介绍了bioRP技术及其技术特点。为了了解生物orp过程中过程诱导的细胞损伤,本文还研究了不同应激条件下细胞损伤的机制。过程诱导的细胞损伤模型也进行了检查,以提供线索,细胞活力保存在制造过程中。本文对生物orp技术的进一步发展进行了讨论,并对正在进行的机械细胞损伤机制的研究提出了建议。
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