片上肌肉装置中氧传输的数学模型。

IF 3.6 3区 生物学 Q1 BIOLOGY
David Hardman, Manh-Louis Nguyen, Stéphanie Descroix, Miguel O Bernabeu
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引用次数: 2

摘要

肌肉芯片设备旨在概括体内肌肉组织的生理特征,因此维持输送到细胞的氧气水平对于细胞存活和提供体内正常环境至关重要。我们使用有限元方法数值模拟来描述氧在三维肌肉芯片生物反应器中的运输和反应,该反应器具有嵌入的肌肉细胞通道和生长介质。我们确定了在一个与外界氧气源密封并通过介质通道灌注的装置中确保肌肉细胞存活所需足够氧气的可行性。我们研究了生物反应器设计中不同元素对氧运输的影响,以优化肌肉组织产量并维持常氧条件。肌肉细胞与运动神经元的成功共培养可以增强肌肉组织功能,因此我们估计了生物反应器内氧浓度支持的最大种子神经元密度。我们证明了一个封闭的生物反应器可以为肌肉细胞的生存和生长提供足够的氧气。我们定义了一种更有效的肌肉和灌注室排列,可以维持每条灌注血管最大肌肉体积增加50%的预测。模拟生物反应器的研究为常压条件下的生物反应器设计提供了预测功能,适用于任何尺寸的灌注血管、肌肉室和室间距离。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mathematical modelling of oxygen transport in a muscle-on-chip device.

Mathematical modelling of oxygen transport in a muscle-on-chip device.

Mathematical modelling of oxygen transport in a muscle-on-chip device.

Mathematical modelling of oxygen transport in a muscle-on-chip device.

Muscle-on-chip devices aim to recapitulate the physiological characteristics of in vivo muscle tissue and so maintaining levels of oxygen transported to cells is essential for cell survival and for providing the normoxic conditions experienced in vivo. We use finite-element method numerical modelling to describe oxygen transport and reaction in a proposed three-dimensional muscle-on-chip bioreactor with embedded channels for muscle cells and growth medium. We determine the feasibility of ensuring adequate oxygen for muscle cell survival in a device sealed from external oxygen sources and perfused via medium channels. We investigate the effects of varying elements of the bioreactor design on oxygen transport to optimize muscle tissue yield and maintain normoxic conditions. Successful co-culturing of muscle cells with motor neurons can boost muscle tissue function and so we estimate the maximum density of seeded neurons supported by oxygen concentrations within the bioreactor. We show that an enclosed bioreactor can provide sufficient oxygen for muscle cell survival and growth. We define a more efficient arrangement of muscle and perfusion chambers that can sustain a predicted 50% increase in maximum muscle volume per perfusion vessel. A study of simulated bioreactors provides functions for predicting bioreactor designs with normoxic conditions for any size of perfusion vessel, muscle chamber and distance between chambers.

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来源期刊
Interface Focus
Interface Focus BIOLOGY-
CiteScore
9.20
自引率
0.00%
发文量
44
审稿时长
6-12 weeks
期刊介绍: Each Interface Focus themed issue is devoted to a particular subject at the interface of the physical and life sciences. Formed of high-quality articles, they aim to facilitate cross-disciplinary research across this traditional divide by acting as a forum accessible to all. Topics may be newly emerging areas of research or dynamic aspects of more established fields. Organisers of each Interface Focus are strongly encouraged to contextualise the journal within their chosen subject.
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