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三维生物打印构建解剖结构真实的组织用于疾病建模和药物测试。

Three-Dimensional Bioprinting of Anatomically Realistic Tissue Constructs for Disease Modeling and Drug Testing.

机构信息

Indiana Institute for Medical Research at "Richard L. Roudebush" VA Medical Center, Indianapolis, Indiana, USA.

Department of Ophthalmology, IU School of Medicine, Indiana University-Purdue University at Indianapolis, Indianapolis, Indiana, USA.

出版信息

Tissue Eng Part C Methods. 2021 Mar;27(3):225-231. doi: 10.1089/ten.TEC.2020.0293. Epub 2021 Feb 26.

Abstract

Three-dimensional (3D) bioprinting is an emerging tissue engineering technology, already with several remarkable accomplishments and with more promises to fulfill. Besides the enduring goal of making tissues for implantation, it could also become an essential tool in the worldwide trend to replace animal experimentation with improved models for disease mechanism studies, or with new high-throughput pharmacological and toxicology assays. All these require the speed, reproducibility, and standardization that bioprinting could easily provide. However, originating from additive manufacturing with its top-down approach of "filling" a virtual volume with a semifluid (hydrogel) material, the finer internal anatomic structure of the tissues, as well as vascularization and innervation, has remained difficult to implement. Thus, the next frontier in bioprinting is the generation of more anatomically realistic models, needed for ascending to the functionality of living tissues. In this study, I discuss the conceptual and practical barriers still hampering the attainment of this goal and suggest solutions to overcome them. In this regard, I introduce two workflows that combine existing methods in new operational sequences: (1) bioprinting guided by images of histological sections assembled in 3D constructs and (2) bioprinting of bidimensional vascular patterns implemented among stackable cellular layers. While more sophisticated methods to capture the tissue structure in 3D constructs certainly exist, I contend that extrusion bioprinting may still offer a simple, practical, and affordable option. Impact statement Paucity of anatomic structural details is one of the limitations of three-dimensional bioprinting toward fulfilling its potential for tissue engineering, drug testing, and toxicological assays. The origins of this problem can be tracked back to derivation of bioprinting from inorganic additive manufacturing, making it more adept to render the shapes of the objects than their content. As solutions, I suggest two simple workflows that can be implemented by most current bioprinters, based on the import into the construct design of anatomically realistic structural information. If more largely adopted, these and similar approaches may significantly improve the applicability of bioprinted constructs.

摘要

三维(3D)生物打印是一种新兴的组织工程技术,已经取得了许多显著的成就,并有望实现更多的突破。除了为植入而制造组织的持久目标外,它还可能成为全球趋势的重要工具,即用改进的疾病机制研究模型替代动物实验,或者用新的高通量药理学和毒理学检测方法替代动物实验。所有这些都需要生物打印能够轻松提供的速度、可重复性和标准化。然而,它起源于增材制造,采用自上而下的方法,用半流体(水凝胶)材料“填充”虚拟体积,因此,组织更精细的内部解剖结构以及血管化和神经支配仍然难以实现。因此,生物打印的下一个前沿是生成更具解剖学真实性的模型,这对于提升活组织的功能是必需的。在本研究中,我讨论了仍然阻碍实现这一目标的概念和实际障碍,并提出了克服这些障碍的解决方案。在这方面,我介绍了两种结合现有方法的工作流程,以新的操作顺序实现:(1)基于组装在 3D 构建体中的组织学切片图像引导的生物打印;(2)在可堆叠细胞层之间实现的二维血管模式的生物打印。虽然存在更复杂的方法来捕获 3D 构建体中的组织结构,但我认为挤出式生物打印仍然可以提供一种简单、实用和经济实惠的选择。

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