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用于构建血管化组织模型的3D生物打印策略。

3D bioprinting strategy for engineering vascularized tissue models.

作者信息

Chae Suhun, Ha Dong-Heon, Lee Hyungseok

机构信息

EDmicBio Inc., Seoul 02458, Republic of Korea.

Department of Mechanical and Biomedical Engineering, Kangwon National University, Chuncheon 24341, Republic of Korea.

出版信息

Int J Bioprint. 2023 Mar 9;9(5):748. doi: 10.18063/ijb.748. eCollection 2023.

DOI:10.18063/ijb.748
PMID:37502273
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10370342/
Abstract

Leveraging three-dimensional (3D) bioprinting in the fields of tissue engineering and regenerative medicine has rapidly accelerated progress toward the development of living tissue constructs and biomedical devices. Ongoing vigorous research has pursued the development of 3D tissue models to replicate the key aspects of human physiology by incorporating relevant cell populations and adequate environmental cues. Given their advantages of being able to intimately mimic the heterogeneity and complexity of their native counterparts, 3D models hold promise as alternatives to conventional cell cultures or animal models for translational application to model human physiology/pathology and drug screening. Research has highlighted the importance of models, and a sophisticated biomanufacturing strategy is vitally required. In particular, vascularization is critical for the prolonged survival and functional maturation of the engineered tissues, which has remained one of the major challenges in the establishment of physiologically relevant 3D models. To this end, 3D bioprinting can efficiently generate solid and reproducible vascularized tissue models with high architectural and compositional similarity to the native tissues, leading to improve the structural maturation and tissue-specific functionality. Multiple bioprinting strategies have been developed to vascularize tissues by spatially controlled patterning of vascular precursors or generating readily perfusable vascular structures. This review presents an overview of the advanced 3D bioprinting strategies for vascularized tissue model development. We present the key elements for rebuilding functional vasculature in 3D-bioprinted tissue models and discuss the recent achievements in the engineering of 3D vascularized models using 3D bioprinting. Finally, we delineate the current challenges and future outlooks of 3D bioprinting-based vascularized tissue models.

摘要

在组织工程和再生医学领域利用三维(3D)生物打印技术,已迅速加速了朝着构建活组织和生物医学设备方向的发展进程。正在进行的大量研究致力于开发3D组织模型,通过纳入相关细胞群体和适当的环境线索来复制人体生理学的关键方面。鉴于3D模型能够紧密模拟其天然对应物的异质性和复杂性,它们有望成为传统细胞培养或动物模型的替代品,用于转化应用以模拟人体生理学/病理学和进行药物筛选。研究突出了这些模型的重要性,并且迫切需要一种复杂的生物制造策略。特别是,血管化对于工程组织的长期存活和功能成熟至关重要,这仍然是建立生理相关3D模型的主要挑战之一。为此,3D生物打印可以高效地生成与天然组织具有高度结构和组成相似性的固态且可重复的血管化组织模型,从而促进结构成熟和组织特异性功能。已经开发了多种生物打印策略,通过对血管前体进行空间控制图案化或生成易于灌注的血管结构来实现组织血管化。本综述概述了用于血管化组织模型开发的先进3D生物打印策略。我们介绍了在3D生物打印组织模型中重建功能性脉管系统的关键要素,并讨论了使用3D生物打印技术在3D血管化模型工程方面的最新成果。最后,我们阐述了基于3D生物打印的血管化组织模型当前面临的挑战和未来展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/95617f255ebd/IJB-9-5-748-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/6b735e51ada9/IJB-9-5-748-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/f4eb6b374ab2/IJB-9-5-748-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/0d92a20ebe0a/IJB-9-5-748-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/95617f255ebd/IJB-9-5-748-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/6b735e51ada9/IJB-9-5-748-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/f4eb6b374ab2/IJB-9-5-748-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/0d92a20ebe0a/IJB-9-5-748-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/10370342/95617f255ebd/IJB-9-5-748-g004.jpg

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3
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4
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Sci Adv. 2025 Apr 25;11(17):eadu5905. doi: 10.1126/sciadv.adu5905. Epub 2025 Apr 23.
5
Multi-Organ Microphysiological Systems Targeting Specific Organs for Recapitulating Disease Phenotypes via Organ Crosstalk.通过器官间相互作用针对特定器官模拟疾病表型的多器官微生理系统。
Small Sci. 2024 Sep 19;4(11):2400314. doi: 10.1002/smsc.202400314. eCollection 2024 Nov.
6
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7
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Small. 2025 Jan;21(1):e2405511. doi: 10.1002/smll.202405511. Epub 2024 Nov 13.
8
Blood vessels in a dish: the evolution, challenges, and potential of vascularized tissues and organoids.培养皿中的血管:血管化组织和类器官的演变、挑战与潜力
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J Microbiol Biotechnol. 2024 May 28;34(5):1003-1016. doi: 10.4014/jmb.2401.01024. Epub 2024 Feb 29.
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4
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