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Assessing glucose and oxygen diffusion in hydrogels for the rational design of 3D stem cell scaffolds in regenerative medicine

机译:评估水凝胶中的葡萄糖和氧气扩散在再生医学中的3D干细胞支架合理设计

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Abstract Hydrogels are attractive biomaterials for replicating cellular microenvironments, but attention needs to be given to hydrogels diffusion properties. A large body of literature shows the promise of hydrogels as 3D culture models, cell expansion systems, cell delivery vehicles, and tissue constructs. Surprisingly, literature seems to have overlooked the important effects of nutrient diffusion on the viability of hydrogel‐encapsulated cells. In this paper, we present the methods and results of an investigation into glucose and oxygen diffusion into a silated‐hydroxypropylmethylcellulose (Si‐HPMC) hydrogel. Using both an implantable glucose sensor and implantable oxygen sensor, we continuously monitored core glucose concentration and oxygen concentration at the centre of hydrogels. We demonstrated that we could tune molecular transport in Si‐HPMC hydrogel by changing the polymer concentration. Specifically, the oxygen diffusion coefficient was found to significantly decrease from 3.4?×?10 ?10 to 2.4?×?10 ?10 ?m 2 ?s ?1 as the polymer concentration increased from 1% to 4% ( w / v ). Moreover, it was revealed during in vitro culture of cellularized hydrogels that oxygen depletion occurred before glucose depletion, suggesting oxygen diffusion is the major limiting factor for cell survival. Insight was also gained into the mechanism of action by which oxygen and glucose diffuse. Indeed, a direct correlation was found between the average polymer crosslinking node size and glucose parameters, and this correlation was not observed for oxygen. Overall, these experiments provide useful insights for the analysis of nutrient transport and gas exchange in hydrogels and for the development of future cellular microenvironments based on Si‐HPMC or similar polysaccharide hydrogels.
机译:摘要水凝胶是复制细胞微环境的吸引力的生物材料,但需要注意水凝胶扩散性能。大量文献显示了水凝胶作为3D培养模型,细胞膨胀系统,细胞输送车辆和组织构建的承诺。令人惊讶的是,文学似乎已经忽略了营养扩散对水凝胶包封细胞的活力的重要作用。在本文中,我们介绍了对葡萄糖和氧气扩散的研究的方法和结果,进入硅酸盐 - 羟丙基甲基纤维素(Si-HPMC)水凝胶中。使用可植入的葡萄糖传感器和可植入氧传感器,我们在水凝胶中心连续监测核心葡萄糖浓度和氧浓度。我们证明我们可以通过改变聚合物浓度来调谐Si-HPMC水凝胶中的分子运输。具体地,发现氧扩散系数从3.4×10?10〜2.4?×10?10?m 2·Δ1,因为聚合物浓度从1%增加到4%(w / v) 。此外,在葡萄糖耗尽前发生的细胞化水凝胶的体外培养过程中揭示了氧气耗尽,表明氧气扩散是细胞存活的主要限制因素。氧气和葡萄糖弥漫性的行动机制也获得了洞察力。实际上,在平均聚合物交联节点尺寸和葡萄糖参数之间发现了直接相关性,并且未观察到氧气的这种相关性。总体而言,这些实验为水凝胶中的营养运输和天然气交换分析以及基于Si-HPMC或类似的多糖水凝胶的开发提供了有用的见解。

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