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Multi-flow channel bioreactor enables real-time monitoring of cellular dynamics in 3D engineered tissue

机译:多流动通道生物反应器能够在3D工程组织中实时监测蜂窝动态

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The key to understanding, harnessing, and manipulating natural biological processes for the benefit of tissue engineering lies in providing a controllable dynamic environment for tissue development in vitro while being able to track cell activity in real time. This work presents a multi-channel bioreactor specifically designed to enable on-line imaging of fluorescently labeled cells embedded in replicated 3D engineered constructs subjected to different flow conditions. The images are acquired in 3D using a standard upright confocal microscope and further analyzed and quantified by computer vision. The platform is used to characterize and quantify the pace and directionality of angiogenic processes induced by flow. The presented apparatus bears considerable potential to advance scientific research, from basic research pursuing the effect of flow versus static conditions on 3D scaffolds and cell types, to clinically oriented modeling in drug screening and cytotoxicity assays. Zohar et al. demonstrate a real-time imaging of fluorescently labeled cells embedded in 3D constructs subjected to different flow conditions. This study provides a framework that enables tracking cell activity continuously during tissue development, suggesting its potential utility for drug screens or cytotoxicity assays.
机译:理解,利用和操纵自然生物学过程的关键,以便组织工程的益处在于提供可控动态环境,用于在体外进行组织发育,同时能够实时跟踪细胞活动。该工作介绍了一种多通道生物反应器,专门设计用于使嵌入经历不同流动条件的复制的3D工程构造的荧光标记的细胞的在线成像。使用标准直立的共聚焦显微镜在3D中获取图像,并通过计算机视觉进一步分析和量化。该平台用于表征和量化流动诱导的血管生成过程的步伐和方向性。本发明的装置具有相当大的潜力来推进科学研究,从基本研究追求流动对3D支架和细胞类型的静态条件,对药物筛选和细胞毒性测定的临床导向模拟。 Zohar等人。证明嵌入于经受不同流动条件的3D构建体中的荧光标记的细胞的实时成像。该研究提供了一种框架,使得在组织开发期间能够连续跟踪细胞活性,表明其用于药物筛选或细胞毒性测定的潜在效用。

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