Cardiovascular Research Center of the General Medical Services and the Departments of Anesthesia, Critical Care and Pain Medicine, Pediatrics, and Medicine, Massachusetts General Hospital - East, 149 13th St, Boston, MA, USA.
Harvard Medical School, Harvard University, Cambridge, MA, USA.
Sci Rep. 2023 Jul 12;13(1):11246. doi: 10.1038/s41598-023-38310-7.
The study of mouse lung mechanics provides essential insights into the physiological mechanisms of pulmonary disease. Consequently, investigators assemble custom systems comprising infusion-withdrawal syringe pumps and analog pressure sensors to investigate the lung function of these animals. But these systems are expensive and require ongoing regulation, making them challenging to use. Here I introduce LungElast, an open-source, inexpensive, and self-contained instrument that can experimentally determine lung elasticity and volumes even in immature mice. It is assembled using custom 3D printed parts and readily available or easily constructed components. In this device, a microprocessor-controlled stepper motor automatically regulates lung volume by precisely driving a syringe piston whose position is determined using time-of-flight LIDAR technology. The airway pressures associated with the lung volumes are determined using compact sensor-on-chip technology, retrieved in a digital format, and stored by the microcontroller. The instrument software is modular, which eases device testing, calibration, and use. Data are also provided here that specify the accuracy and precision of the elastometer's sensors and volume delivery and demonstrate its use with lung models and mouse pups. This instrument has excellent potential for research and educational work.
研究小鼠肺部力学为肺部疾病的生理机制提供了重要的见解。因此,研究人员组装定制系统,包括输注-抽取注射器泵和模拟压力传感器,以研究这些动物的肺部功能。但是,这些系统昂贵且需要持续调节,因此使用起来具有挑战性。在这里,我介绍 LungElast,这是一种开源、廉价且自给自足的仪器,即使在未成熟的小鼠中也可以实验确定肺部弹性和体积。它是使用定制的 3D 打印零件和现成的或易于构建的组件组装而成的。在该设备中,微处理器控制的步进电机通过精确驱动注射器活塞自动调节肺容量,其位置使用飞行时间激光雷达技术确定。使用紧凑型传感器芯片技术确定与肺容量相关的气道压力,以数字格式检索,并由微控制器存储。仪器软件是模块化的,这便于设备测试、校准和使用。这里还提供了有关弹性计传感器和体积输送的准确性和精度的数据,并展示了其在肺部模型和小鼠幼仔中的使用。该仪器在研究和教育工作中具有很好的应用潜力。