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通过合成 3D 软微流控技术实现大规模灌注组织。

Large-scale perfused tissues via synthetic 3D soft microfluidics.

机构信息

Laboratory of Bioengineering and Morphogenesis, Biomechanics Section, Department of Mechanical Engineering, KU Leuven, Leuven, Belgium.

Stem Cell Institute Leuven and Department of Development and Regeneration, Faculty of Medicine, KU Leuven, Leuven, Belgium.

出版信息

Nat Commun. 2023 Jan 12;14(1):193. doi: 10.1038/s41467-022-35619-1.

Abstract

The vascularization of engineered tissues and organoids has remained a major unresolved challenge in regenerative medicine. While multiple approaches have been developed to vascularize in vitro tissues, it has thus far not been possible to generate sufficiently dense networks of small-scale vessels to perfuse large de novo tissues. Here, we achieve the perfusion of multi-mm tissue constructs by generating networks of synthetic capillary-scale 3D vessels. Our 3D soft microfluidic strategy is uniquely enabled by a 3D-printable 2-photon-polymerizable hydrogel formulation, which allows for precise microvessel printing at scales below the diffusion limit of living tissues. We demonstrate that these large-scale engineered tissues are viable, proliferative and exhibit complex morphogenesis during long-term in-vitro culture, while avoiding hypoxia and necrosis. We show by scRNAseq and immunohistochemistry that neural differentiation is significantly accelerated in perfused neural constructs. Additionally, we illustrate the versatility of this platform by demonstrating long-term perfusion of developing neural and liver tissue. This fully synthetic vascularization platform opens the door to the generation of human tissue models at unprecedented scale and complexity.

摘要

工程化组织和类器官的血管化仍然是再生医学中一个未解决的主要挑战。虽然已经开发出多种方法来使体外组织血管化,但迄今为止,还不可能生成足够密集的小尺度血管网络来灌注大的新组织。在这里,我们通过生成合成毛细血管尺度的 3D 血管网络来实现多毫米组织构建体的灌注。我们的 3D 软微流控策略是通过一种可 3D 打印的双光子聚合水凝胶配方实现的,该配方允许在低于活组织扩散极限的尺度上进行精确的微血管打印。我们证明,这些大规模工程组织在长期体外培养过程中是有活力的、增殖的,并表现出复杂的形态发生,同时避免了缺氧和坏死。我们通过 scRNAseq 和免疫组织化学证明,在灌注的神经构建体中,神经分化显著加速。此外,我们通过展示发育中的神经和肝脏组织的长期灌注来展示该平台的多功能性。这个完全合成的血管化平台为以前所未有的规模和复杂性生成人类组织模型开辟了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d63/9837048/264bf19c4470/41467_2022_35619_Fig1_HTML.jpg

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