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Generation of Multi-Scale Vascular Network System within 3D Hydrogel using 3D Bio-Printing Technology

机译:使用3D生物打印技术在3D水凝胶中生成多尺度血管网络系统

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摘要

Although 3D bio-printing technology has great potential in creating complex tissues with multiple cell types and matrices, maintaining the viability of thick tissue construct for tissue growth and maturation after the printing is challenging due to lack of vascular perfusion. Perfused capillary network can be a solution for this issue; however, construction of a complete capillary network at single cell level using the existing technology is nearly impossible due to limitations in time and spatial resolution of the dispensing technology. To address the vascularization issue, we developed a 3D printing method to construct larger (lumen size of ~1mm) fluidic vascular channels and to create adjacent capillary network through a natural maturation process, thus providing a feasible solution to connect the capillary network to the large perfused vascular channels. In our model, microvascular bed was formed in between two large fluidic vessels, and then connected to the vessels by angiogenic sprouting from the large channel edge. Our bio-printing technology has a great potential in engineering vascularized thick tissues and vascular niches, as the vascular channels are simultaneously created while cells and matrices are printed around the channels in desired 3D patterns.
机译:尽管3D生物打印技术在创建具有多种细胞类型和基质的复杂组织方面具有巨大潜力,但由于缺乏血管灌注,因此在打印后保持厚组织构建体在组织生长和成熟中的生存能力具有挑战性。灌注毛细管网络可以解决这个问题。然而,由于分配技术的时间和空间分辨率的限制,使用现有技术在单个细胞水平上构建完整的毛细管网络几乎是不可能的。为了解决血管化问题,我们开发了一种3D打印方法来构造较大的(管腔大小约为1mm)的流体血管通道,并通过自然成熟过程创建相邻的毛细血管网,从而为将毛细血管网连接到大血管提供了可行的解决方案。灌注的血管通道。在我们的模型中,微血管床形成在两个大的流体血管之间,然后通过大通道边缘的血管生成萌芽连接到血管。我们的生物打印技术在工程化血管化的厚组织和血管壁中具有巨大的潜力,因为同时创建了血管通道,而细胞和基质则以所需的3D模式打印在通道周围。

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