血管生成驱动的3D生物打印血管网络的细胞外基质重塑

Q1 Computer Science Bioprinting Pub Date : 2023-04-01 DOI:10.1016/j.bprint.2023.e00258
Ying Betty Li , Caroline Sodja , Marina Rukhlova , Jordan Nhan , Joshua J.A. Poole , Harry Allen , Selam Yimer , Ewa Baumann , Erin Bedford , Hannah Prazak , Will J. Costain , Sangeeta Murugkar , Jean-Philippe St-Pierre , Leila Mostaço-Guidolin , Anna Jezierski
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引用次数: 0

摘要

血管生成在发育和组织生长以及癌症等病理条件中起着关键作用。能够理解组织血管化和血管生成网络形成的基本机制,为推进体外组织模型的发展和增强组织工程应用提供了一个窗口。在这项研究中,我们利用一种新的基于微流体的三维(3D)生物打印技术和海藻酸胶原I型(AGC)生物链接,开发了一种3D生物打印策略,以实现3D结构内复杂血管生成网络的生物制造。这些网络由猿猴空泡病毒40 (SV40)转化的成年大鼠脑内皮细胞(SV-ARBEC)水凝胶环组成。由于具有与血管组织工程应用相关的机械性能,这些生物打印结构形成了自发的血管网络,让人想起各向异性组织样结构,同时保持了高细胞活力。血管网络的形成伴随着细胞外基质(ECM)的重塑,证实了SV-ARBEC介导的I型胶原纤维的顺序沉积和重组。广谱基质金属蛋白酶(MMP)抑制剂抑制SV-ARBEC血管生成发芽,强调血管生成网络形成中ECM重塑的要求。这种新型的3D微流体生物打印技术和生物相容性AGC水凝胶纤维环支持强大的SV-ARBEC血管生成和相应的ECM重塑,使我们能够提出一种适合于推进血管研究应用的策略,支持疾病模型的进一步发展,药物发现和组织工程应用的新型测试平台。
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Angiogenesis driven extracellular matrix remodeling of 3D bioprinted vascular networks

Angiogenesis plays a pivotal role in development and tissue growth, as well as in pathological conditions such as cancer. Being able to understand the basic mechanisms involved in the vascularization of tissues and angiogenic network formation provides a window to advance the development of in vitro tissue models and enhance tissue engineering applications. In this study, we leveraged a novel microfluidic-based three dimensional (3D) bioprinting technology and alginate-collagen type I (AGC) bioink, to develop a 3D bioprinting strategy to enable the biofabrication of complex angiogenic networks within the 3D structure. These networks were comprised of simian vacuolating virus 40 (SV40) transformed adult rat brain endothelial cell (SV-ARBEC)-laden hydrogel rings. With mechanical properties relevant for vascular tissue engineering applications, these bioprinted constructs formed spontaneous vascular networks, reminiscent of anisotropic tissue-like structures, while retaining high cellular viability. The vascular network formation was accompanied by extracellular matrix (ECM) remodeling, confirming sequential SV-ARBEC mediated collagen type I fiber deposition and reorganization. Treatment with broad spectrum matrix metalloproteinase (MMP) inhibitor supressed SV-ARBEC angiogenic sprouting, highlighting requirements of ECM remodeling in angiogenic network formation. This novel 3D microfluidic bioprinting technology and biocompatible AGC hydrogel fiber rings supported robust SV-ARBEC angiogenesis and corresponding ECM remodeling, allowing us to present a strategy suitable to advancing applications in vascular research and supporting the further development of disease models, novel testing beds for drug discovery and tissue engineering applications.

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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.
期刊最新文献
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