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用于同轴和三轴生物打印的水凝胶基生物墨水:材料特性、打印技术及应用综述

Hydrogel-Based Bioinks for Coaxial and Triaxial Bioprinting: A Review of Material Properties, Printing Techniques, and Applications.

作者信息

Banigo Alma Tamunonengiofori, Nauta Laura, Zoetebier Bram, Karperien Marcel

机构信息

Department of Developmental BioEngineering, Faculty of Science and Technology and TechMed Centre, University of Twente, Drienerlolaan 5, 7522 NB Enschede, The Netherlands.

出版信息

Polymers (Basel). 2025 Mar 28;17(7):917. doi: 10.3390/polym17070917.

Abstract

Three-dimensional bioprinting technology has emerged as a rapidly advancing multidisciplinary field with significant potential for tissue engineering applications. This technology enables the formation of complex tissues and organs by utilizing hydrogels, with or without cells, as scaffolds or structural supports. Among various bioprinting methods, advanced bioprinting using coaxial and triaxial nozzles stands out as a promising technique. Coaxial bioprinting technique simultaneously deposits two material streams through a coaxial nozzle, enabling controlled formation of an outer shell and inner core construct. In contrast, triaxial bioprinting utilizes three material streams namely the outer shell, inner shell and inner core to fabricate more complex constructs. Despite the growing interest in 3D bioprinting, the development of suitable cell-laden bioinks for creating complex tissues remains unclear. To address this gap, a systematic review was conducted using the preferred reporting items for systematic reviews and meta-analyses (PRISMA) flowchart, collecting 1621 papers from various databases, including Web of Science, PUBMED, SCOPUS, and Springer Link. After careful selection, 85 research articles focusing on coaxial and triaxial bioprinting were included in the review. Specifically, 77 research articles concentrated on coaxial bioprinting and 11 focused on triaxial bioprinting, with 3 covering both techniques. The search, conducted between 1 April and 30 September 2023, had no restrictions on publication date, and no meta-analyses were carried out due to the heterogeneity of studies. The primary objective of this review is to assess and identify the most commonly occurring cell-laden bioinks critical for successful advancements in bioprinting technologies. Specifically, the review focuses on delineating the commonly explored bioinks utilized in coaxial and triaxial bioprinting approaches. It focuses on evaluating the inherent merits of these bioinks, systematically comparing them while emphasizing their classifications, essential attributes, properties, and potential limitations within the domain of tissue engineering. Additionally, the review considers the applications of these bioinks, offering comprehensive insights into their efficacy and utility in the field of bioprinting technology. Overall, this review provides a comprehensive overview of some conditions of the relevant hydrogel bioinks used for coaxial and triaxial bioprinting of tissue constructs. Future research directions aimed at advancing the field are also briefly discussed.

摘要

三维生物打印技术已成为一个快速发展的多学科领域,在组织工程应用方面具有巨大潜力。这项技术通过利用水凝胶(有细胞或无细胞)作为支架或结构支撑,能够形成复杂的组织和器官。在各种生物打印方法中,使用同轴和三轴喷嘴的先进生物打印技术脱颖而出,是一种很有前景的技术。同轴生物打印技术通过同轴喷嘴同时沉积两种材料流,能够可控地形成外壳和内核结构。相比之下,三轴生物打印利用三种材料流,即外壳、内壳和内核来制造更复杂的结构。尽管人们对3D生物打印的兴趣日益浓厚,但用于创建复杂组织的合适的含细胞生物墨水的开发仍不明确。为了填补这一空白,我们使用系统评价和Meta分析的首选报告项目(PRISMA)流程图进行了一项系统评价,从包括Web of Science、PUBMED、SCOPUS和Springer Link在内的各种数据库中收集了1621篇论文。经过仔细筛选,85篇专注于同轴和三轴生物打印的研究文章被纳入该评价。具体而言,77篇研究文章专注于同轴生物打印,11篇专注于三轴生物打印,3篇涵盖了这两种技术。该检索于2023年4月1日至9月30日进行,对出版日期没有限制,由于研究的异质性,未进行Meta分析。本评价的主要目的是评估和确定对生物打印技术成功进展至关重要的最常见的含细胞生物墨水。具体而言,该评价侧重于描述同轴和三轴生物打印方法中常用的生物墨水。它侧重于评估这些生物墨水的固有优点,在强调它们在组织工程领域的分类、基本属性、特性和潜在局限性的同时,对它们进行系统比较。此外,该评价还考虑了这些生物墨水的应用,全面深入地了解它们在生物打印技术领域的功效和实用性。总体而言,本评价全面概述了用于组织构建物同轴和三轴生物打印的相关水凝胶生物墨水的一些情况。还简要讨论了旨在推动该领域发展的未来研究方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c091/11991663/d1418806e5ab/polymers-17-00917-g001.jpg

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