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Investigating oxygen transport efficiencies in precision-cut liver slice-based organ-on-a-chip devices

机译:研究精密切割肝切片的芯片装置中的氧气输送效率

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摘要

Microfluidic 'organ-on-a-chip' devices hold great potential for better mimicking the continuous flow microenvironment experienced by tissue and cells in vivo, thereby ensuring realistic transport of nutrients and elimination of waste products. However, the mass transport of oxygen, which arguably is the most critical nutrient due to its inherently low solubility in water, is rarely assessed. To this aim, the suitability of various precision-cut liver slice (PCLS) microfluidic devices for the defined maintenance of oxygen mass transport were evaluated using COMSOL simulations, leading to the development of a novel, optimised design to provide defined in vivo oxygenation conditions within an organ-on-a-chip system. Simulations found that the proposed device was capable of maintaining 43% of the tissue slice volume within the physiological range of the liver against 18% for the best performing literature device. The optimal device architecture derived from the modelling was then fabricated and its operation confirmed with an LDH assay. These simulation results form the basis for a greater understanding of not just the challenges involved in designing organ-on-a-chip devices, but also highlight issues that would arise from the incorporation of additional organs, as research progresses towards complete human-on-a-chip model systems.
机译:微流体的“芯片的器官”装置具有巨大的潜力,以便更好地模仿组织和体内细胞所经历的连续流动微环境,从而确保营养成分的现实运输和消除废物。然而,氧气的大规模运输,可同步是由于其在水中固有的低溶解度而最关键的营养素,很少评估。为此,使用COMSOL模拟评估各种精密切割肝脏(PCLS)微流体装置的适用性,用于确定氧气传输的定义氧气传输的维持,导致新颖的优化设计的开发,以在体内氧合条件下提供一个芯片系统。模拟发现,所提出的装置能够在肝脏的生理范围内保持43%的组织切片体积,以获得最佳性能的文献装置的18%。然后制造从建模衍生的最佳装置架构,并用LDH测定确认其操作。这些模拟结果形成了更加了解芯片设备设备的挑战的基础,而且还突出了额外的器官纳入的问题,因为研究进展到完全的人 - on-一种芯片模型系统。

著录项

  • 来源
    《Microfluidics and nanofluidics》 |2021年第4期|35.1-35.12|共12页
  • 作者单位

    Univ Hull Dept Chem & Biochem Cottingham Rd Kingston Upon Hull HU6 7RX N Humberside England;

    Univ Hull Dept Biomed & Forens Sci Cottingham Rd Kingston Upon Hull HU6 7RX N Humberside England;

    Univ Hull Dept Biomed & Forens Sci Cottingham Rd Kingston Upon Hull HU6 7RX N Humberside England;

    Univ Hull Dept Biomed & Forens Sci Cottingham Rd Kingston Upon Hull HU6 7RX N Humberside England;

    Univ Hull Dept Chem & Biochem Cottingham Rd Kingston Upon Hull HU6 7RX N Humberside England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Organ-on-chip; Liver metabolism; Oxygen tension; COMSOL modelling;

    机译:片上电机;肝脏代谢;氧气张力;COMSOL建模;
  • 入库时间 2022-08-19 01:19:49
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