Hillman Tyler C, Idnani Ryan, Wilson Christopher G
Lawrence D. Longo, MD Center for Perinatal Biology, Loma Linda, CA, United States.
Department of Bioengineering, College of Engineering, University of California, Berkeley, CA, United States.
Front Physiol. 2022 Jul 12;13:891005. doi: 10.3389/fphys.2022.891005. eCollection 2022.
Understanding hypoxia/hyperoxia exposure requires either a high-altitude research facility or a chamber in which gas concentrations are precisely and reproducibly controlled. Hypoxia-induced conditions such as hypoxic-ischemic encephalopathy (HIE), obstructive or central apneas, and ischemic stroke present unique challenges for the development of models with acute or chronic hypoxia exposure. Many murine models exist to study these conditions; however, there are a variety of different hypoxia exposure protocols used across laboratories. Experimental equipment for hypoxia exposure typically includes flow regulators, nitrogen concentrators, and premix oxygen/nitrogen tanks. Commercial hypoxia/hyperoxia chambers with environmental monitoring are incredibly expensive and require proprietary software with subscription fees or highly expensive software licenses. Limitations exist in these systems as most are single animal systems and not designed for extended or intermittent hypoxia exposure. We have developed a simple hypoxia chamber with off-the-shelf components, and controlled by open-source software for continuous data acquisition of oxygen levels and other environmental factors (temperature, humidity, pressure, light, sound, etc.). Our chamber can accommodate up to two mouse cages and one rat cage at any oxygen level needed, when using a nitrogen concentrator or premixed oxygen/nitrogen tank with a flow regulator, but is also scalable. Our system uses a -based script to save data in a text file using modules from the sensor vendor. We utilized or scripts for data analysis, and we have provided examples of data analysis scripts and acquired data for extended exposure periods (≤7 days). By using FLOS (Free-Libre and open-source) software and hardware, we have developed a low-cost and customizable system that can be used for a variety of exposure protocols. This hypoxia/hyperoxia exposure chamber allows for reproducible and transparent data acquisition and increased consistency with a high degree of customization for each experimenter's needs.
了解缺氧/高氧暴露需要一个高海拔研究设施或一个能够精确且可重复控制气体浓度的舱室。缺氧诱导的病症,如缺氧缺血性脑病(HIE)、阻塞性或中枢性呼吸暂停以及缺血性中风,给急性或慢性缺氧暴露模型的开发带来了独特的挑战。存在许多用于研究这些病症的小鼠模型;然而,不同实验室使用的缺氧暴露方案各不相同。用于缺氧暴露的实验设备通常包括流量调节器、氮气浓缩器和预混氧气/氮气罐。带有环境监测功能的商用缺氧/高氧舱极其昂贵,并且需要带有订阅费用的专有软件或极其昂贵的软件许可证。这些系统存在局限性,因为大多数是单动物系统,并非为长时间或间歇性缺氧暴露而设计。我们开发了一个使用现成组件的简单缺氧舱,并由开源软件控制,用于连续采集氧气水平和其他环境因素(温度、湿度、压力、光照、声音等)的数据。当使用带有流量调节器的氮气浓缩器或预混氧气/氮气罐时,我们的舱室在任何所需的氧气水平下最多可容纳两个小鼠笼和一个大鼠笼,而且还具有可扩展性。我们的系统使用基于[具体内容未给出]的脚本,通过传感器供应商的模块将数据保存到文本文件中。我们利用[具体内容未给出]或[具体内容未给出]脚本进行数据分析,并且我们提供了数据分析脚本的示例以及长时间暴露(≤7天)获取的数据。通过使用自由、开源软件和硬件,我们开发了一个低成本且可定制的系统,可用于各种暴露方案。这个缺氧/高氧暴露舱允许进行可重复且透明的数据采集,并根据每个实验者的需求进行高度定制,从而提高一致性。