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Optical coherence tomography of cell dynamics in three-dimensional engineered tissues

机译:三维工程组织中细胞动力学的光学相干断层扫描

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Cell-based engineered tissue models have been increasingly useful in the field of tissue engineering, in in vitro drug screening systems, and in complex cell biology studies. While techniques for engineering tissue models have advanced, there have been few imaging technique capable of assessing the complex 3-D cell behaviors in real-time and at the depths that comprise thick tissues. Understanding cell behavior requires advanced imaging tools to progress from characterizing 2-D cell cultures to complex, highly-scattering, thick 3-D tissue constructs. Optical coherence tomography (OCT) is an emerging biomedical imaging technique that can perform cellular-resolution imaging in situ and in real-time. OCT, which uses near-infrared laser light, provides deep-tissue imaging up to several millimeters within highly-scattering tissue, thus permitting visualization of changes at depths previously unattainable. In this study, we demonstrate that it is possible to use OCT to evaluate dynamic cell behavior and function in a quantitative fashion in four dimensions (3-D space plus time). We investigated and characterized cell dynamics and processes in deep tissue models, such as cell de-adhesion, cell proliferation, cell chemotaxis migration, cell necrosis, and cell apoptosis. This optical imaging technique was developed and utilized in order to gain new insights into how chemical microenvironments influence cellular functions and dynamics in multi-dimensional models. In addition, by detecting the changes in cell dynamics, effective chemical concentration could be estimated. With high penetration depth and increased spatial and temporal resolution in 3-D space, OCT will be a useful tool for improving our understanding of cell dynamics in situ and hi real-time, for elucidating the complex biological interactions, and for directing our designs toward functional and biomimetic engineered tissues.
机译:基于细胞的工程组织模型在组织工程领域,体外药物筛选系统以及复杂的细胞生物学研究中越来越有用。尽管用于组织工程模型的技术已经发展,但几乎没有能够实时评估包括厚组织的深度的复杂3-D细胞行为的成像技术。要了解细胞行为,就需要先进的成像工具,以从表征2-D细胞培养物发展为复杂的,高度分散的厚3-D组织构造。光学相干断层扫描(OCT)是一种新兴的生物医学成像技术,可以原位实时进行细胞分辨率成像。 OCT使用近红外激光,可在高度散射的组织内提供多达几毫米的深组织成像,因此可以可视化以前无法实现的深度变化。在这项研究中,我们证明了可以使用OCT在四个维度(3-D空间加时间)中以定量方式评估动态细胞行为和功能。我们研究和表征了深层组织模型中的细胞动力学和过程,例如细胞去粘附,细胞增殖,细胞趋化性迁移,细胞坏死和细胞凋亡。这项光学成像技术的开发和利用是为了获得新的见解,以了解化学微环境如何影响多维模型中的细胞功能和动力学。另外,通过检测细胞动力学的变化,可以估计有效的化学浓度。 OCT具有较高的穿透深度,并在3-D空间中具有更高的时空分辨率,它将成为提高我们对原位和实时细胞动力学的了解,阐明复杂的生物相互作用以及指导我们的设计朝上的有用工具。功能和仿生工程组织。

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