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同轴湿法纺丝在 3D 生物打印中的应用:微流控集成的现状和未来展望。

Co-axial wet-spinning in 3D bioprinting: state of the art and future perspective of microfluidic integration.

机构信息

Department of Chemistry, University of Rome 'La Sapienza', 00185 Rome, Italy. Warsaw University of Technology, Faculty of Materials Science and Engineering, Warsaw, Poland. Institute of Physical Chemistry, Polish Academy of Sciences, 01224 Warsaw, Poland.

出版信息

Biofabrication. 2018 Nov 9;11(1):012001. doi: 10.1088/1758-5090/aae605.

Abstract

Nowadays, 3D bioprinting technologies are rapidly emerging in the field of tissue engineering and regenerative medicine as effective tools enabling the fabrication of advanced tissue constructs that can recapitulate in vitro organ/tissue functions. Selecting the best strategy for bioink deposition is often challenging and time consuming process, as bioink properties-in the first instance, rheological and gelation-strongly influence the suitable paradigms for its deposition. In this short review, we critically discuss one of the available approaches used for bioprinting-namely co-axial wet-spinning extrusion. Such a deposition system, in fact, demonstrated to be promising in terms of printing resolution, shape fidelity and versatility when compared to other methods. An overview of the performances of co-axial technology in the deposition of cellularized hydrogel fibres is discussed, highlighting its main features. Furthermore, we show how this approach allows (i) to decouple the printing accuracy from bioink rheological behaviour-thus notably simplifying the development of new bioinks-and (ii) to build heterogeneous multi-materials and/or multicellular constructs that can better mimic the native tissues when combined with microfluidic systems. Finally, the ongoing challenges and the future perspectives for the ultimate fabrication of functional constructs for advanced research studies are highlighted.

摘要

如今,3D 生物打印技术在组织工程和再生医学领域迅速兴起,成为制造能够模拟体外器官/组织功能的先进组织构建体的有效工具。选择最佳的生物墨水沉积策略通常是具有挑战性和耗时的过程,因为生物墨水的特性(首先是流变学和胶凝)强烈影响其沉积的合适模式。在这篇简短的综述中,我们批判性地讨论了用于生物打印的一种可用方法——即同轴湿法纺丝挤出。与其他方法相比,这种沉积系统在打印分辨率、形状保真度和多功能性方面表现出了很大的潜力。讨论了同轴技术在细胞化水凝胶纤维沉积方面的性能概述,突出了其主要特点。此外,我们展示了这种方法如何允许(i)将打印精度与生物墨水的流变行为解耦——从而显著简化新生物墨水的开发,以及(ii)构建具有更好模拟天然组织的异质多材料和/或多细胞构建体,与微流控系统结合使用。最后,强调了为高级研究最终制造功能性构建体所面临的挑战和未来展望。

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