Design aspects and characterization of hydrogel-based bioinks for extrusion-based bioprinting

Q1 Computer Science
Jennika Karvinen, Minna Kellomäki
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引用次数: 5

Abstract

3D-bioprinting has become a valid technique for tissue and organ regeneration, as the printing of living cells is allowed while the hydrogel-based ink material provides them mechanical and structural support. Self-healing shear-thinning hydrogel inks can be considered most promising ink materials for extrusion-based bioprinting (EBB), because the ink can be extruded due to the decrease in viscosity under shear, and self-healed after removing the shear, which ensures safe printing of cells and shape fidelity after bioprinting. To achieve the best final bioprinting result, some printing technique, ink material and biological aspects of bioprinting need to be considered. In addition, the versatile characterization of pre- and post-printing properties of the inks helps to improve the final bioprinted constructs. However, despite the great advances in 3D-bioprinting, ink related challenges such as opposing characteristics, and lack of controllable micro-environment, or technological challenges such as the need to increase printing speed and print resolution must be resolved. In terms of ink characterization, more standardization is also needed. In addition, the computational modeling would help to improve the performance of the bioprinted construct. Thus, the future of 3D-bioprinting is going towards larger multifunctional tissue/organ constructs with multi-scale vascularization and innervation. Multiple printing techniques are probably combined, but also completely new techniques are needed. Further, multimaterial printing would enable heterogeneity and gradients to the construct. On the other hand, using 4D-bioprinting, the dynamic nature of complex organs could be added to the construct. By combining bioprinting with microphysiological platforms (tissue- or organ-on-a-chip systems) the development of functional tissues and organs intended for implantation would go forward. The translation of EBB into clinical practice is still in the early stages, but EBB has a great potential in regenerative medicine after the challenges, such as biomimicry, reproducibility or up-scaling related issues have been overcome. In this review, the design aspects related to extrusion-based bioprinting technique, the property requirements for ideal bioink, the biological aspects of 3D-bioprinting, and the characterization of the pre- and post-printing properties of bioinks are presented. Also, the challenges and future prospects of 3D-bioprinting are discussed.

用于挤压生物打印的水凝胶生物墨水的设计和表征
3d生物打印已经成为组织和器官再生的有效技术,因为打印活细胞是允许的,而水凝胶墨水材料为它们提供了机械和结构支持。自愈性剪切减薄水凝胶油墨被认为是最有前途的挤出生物打印(EBB)油墨材料,因为油墨在剪切作用下粘度降低,可以挤出,去除剪切后可以自愈,保证了生物打印后细胞的安全打印和形状的保真度。为了达到最佳的最终生物打印效果,需要考虑生物打印的一些打印技术、油墨材料和生物学方面的问题。此外,油墨的印刷前后特性的多功能表征有助于改善最终的生物打印结构。然而,尽管3d生物打印取得了巨大的进步,但墨水相关的挑战,如相反的特性,缺乏可控的微环境,或技术挑战,如需要提高打印速度和打印分辨率,必须解决。在油墨特性方面,也需要更多的标准化。此外,计算建模将有助于提高生物打印结构的性能。因此,3d生物打印的未来将走向更大的多功能组织/器官结构,具有多尺度的血管化和神经支配。多种印刷技术可能结合在一起,但也需要全新的技术。此外,多材料打印将使结构具有异质性和梯度。另一方面,使用4d生物打印,复杂器官的动态特性可以添加到结构中。通过将生物打印与微生理平台(组织或器官芯片系统)相结合,用于植入的功能性组织和器官的开发将向前发展。将EBB转化为临床实践仍处于早期阶段,但在克服了诸如仿生学、可重复性或规模化相关问题等挑战后,EBB在再生医学中具有巨大的潜力。在这篇综述中,介绍了与基于挤压的生物打印技术相关的设计方面,理想生物墨水的性能要求,3d生物打印的生物学方面,以及生物墨水打印前和打印后性能的表征。此外,还讨论了3d生物打印面临的挑战和未来的前景。
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
Bioprinting
Bioprinting Computer Science-Computer Science Applications
CiteScore
11.50
自引率
0.00%
发文量
72
审稿时长
68 days
期刊介绍: Bioprinting is a broad-spectrum, multidisciplinary journal that covers all aspects of 3D fabrication technology involving biological tissues, organs and cells for medical and biotechnology applications. Topics covered include nanomaterials, biomaterials, scaffolds, 3D printing technology, imaging and CAD/CAM software and hardware, post-printing bioreactor maturation, cell and biological factor patterning, biofabrication, tissue engineering and other applications of 3D bioprinting technology. Bioprinting publishes research reports describing novel results with high clinical significance in all areas of 3D bioprinting research. Bioprinting issues contain a wide variety of review and analysis articles covering topics relevant to 3D bioprinting ranging from basic biological, material and technical advances to pre-clinical and clinical applications of 3D bioprinting.
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