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Development of a three-dimensional cell culture system based on microfluidics for nuclear magnetic resonance and optical monitoring

机译:基于微流控技术的三维细胞培养系统的核磁共振和光学监测

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摘要

A new microfluidic cell culture device compatible with real-time nuclear magnetic resonance (NMR) is presented here. The intended application is the long-term monitoring of 3D cell cultures by several techniques. The system has been designed to fit inside commercially available NMR equipment to obtain maximum readout resolution when working with small samples. Moreover, the microfluidic device integrates a fibre-optic-based sensor to monitor parameters such as oxygen, pH, or temperature during NMR monitoring, and it also allows the use of optical microscopy techniques such as confocal fluorescence microscopy. This manuscript reports the initial trials culturing neurospheres inside the microchamber of this device and the preliminary images and spatially localised spectra obtained by NMR. The images show the presence of a necrotic area in the interior of the neurospheres, as is frequently observed in histological preparations; this phenomenon appears whenever the distance between the cells and fresh nutrients impairs the diffusion of oxygen. Moreover, the spectra acquired in a volume of 8 nl inside the neurosphere show an accumulation of lactate and lipids, which are indicative of anoxic conditions. Additionally, a basis for general temperature control and monitoring and a graphical control software have been developed and are also described. The complete platform will allow biomedical assays of therapeutic agents to be performed in the early phases of therapeutic development. Thus, small quantities of drugs or advanced nanodevices may be studied long-term under simulated living conditions that mimic the flow and distribution of nutrients.
机译:这里介绍了一种与实时核磁共振(NMR)兼容的新型微流细胞培养装置。预期的应用是通过多种技术对3D细胞培养进行长期监控。该系统经过设计,可装入市售的NMR设备中,以便在处理小样品时获得最大的读数分辨率。此外,微流体装置集成了基于光纤的传感器,可在NMR监测过程中监测氧,pH或温度等参数,并且还允许使用光学显微镜技术(例如共聚焦荧光显微镜)。该手稿报道了在该设备微腔室内培养神经球的初步试验以及通过NMR获得的初步图像和空间局部光谱。图像显示在神经球内部存在坏死区域,这在组织学准备工作中经常观察到。只要细胞与新鲜养分之间的距离削弱了氧气的扩散,就会出现这种现象。此外,在神经球内部的体积为8 nl的情况下获得的光谱显示出乳酸和脂质的积累,这表明缺氧状况。另外,已经开发并描述了用于一般温度控制和监视的基础以及图形控制软件。完整的平台将允许在治疗发展的早期阶段进行治疗剂的生物医学测定。因此,可以在模拟营养物质流动和分布的模拟生活条件下长期研究少量药物或先进的纳米装置。

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