Department of Bioengineering, University of Illinois at Chicago, Chicago, Illinois, United States of America.
PLoS One. 2009 Sep 3;4(9):e6891. doi: 10.1371/journal.pone.0006891.
Oxygen is a key modulator of many cellular pathways, but current devices permitting in vitro oxygen modulation fail to meet the needs of biomedical research. A microfabricated insert for multiwell plates has been developed to more effectively control the temporal and spatial oxygen concentration to better model physiological phenomena found in vivo. The platform consists of a polydimethylsiloxane insert that nests into a standard multiwell plate and serves as a passive microfluidic gas network with a gas-permeable membrane aimed to modulate oxygen delivery to adherent cells. Equilibration time is on the order of minutes and a wide variety of oxygen profiles can be attained based on the device design, such as the cyclic profile achieved in this study, and even oxygen gradients to mimic those found in vivo. The proper biological consequences of the device's oxygen delivery were confirmed in cellular models via a proliferation assay and western analysis of the upregulation of hypoxia inducible transcription factor-1alpha. These experiments serve as a demonstration for the platform as a viable tool to increase experimental throughput and permit novel experimental possibilities in any biomedical research lab.
氧气是许多细胞途径的关键调节剂,但目前允许体外氧气调节的设备无法满足生物医学研究的需求。已经开发出一种用于多孔板的微加工插件,以更有效地控制时间和空间氧气浓度,从而更好地模拟体内发现的生理现象。该平台由一个嵌套在标准多孔板中的聚二甲基硅氧烷插件组成,作为一个具有透气膜的被动微流控气体网络,旨在调节对贴壁细胞的氧气输送。平衡时间为数分钟,并且可以根据设备设计获得各种氧气分布,例如本研究中实现的循环分布,甚至可以模拟体内存在的氧气梯度。通过增殖测定和缺氧诱导转录因子-1α的上调的 Western 分析,在细胞模型中证实了该设备氧气输送的适当生物学后果。这些实验证明了该平台作为一种可行的工具,可提高实验通量并允许任何生物医学研究实验室进行新的实验可能性。