Joshi Purva, Chau Zachary, Keating Shaun, Langer Colby, Matheson Grace, Devorsetz Emily, Scanlon Natalie, Toner Mehmet, Sandlin Rebecca D
Center for Engineering in Medicine & Surgery, Department of Surgery, Massachusetts General Hospital, Harvard Medical School, and Shriners Children's Boston, USA.
Department of Bioengineering, Northeastern University, Boston, MA, USA.
Cryobiology. 2025 Jun;119:105250. doi: 10.1016/j.cryobiol.2025.105250. Epub 2025 May 10.
An automated device is described which enables programmable submersion in liquid nitrogen to enable rapid specimen cooling for vitrification applications. The device presented here is low-cost, portable, and compatible with a range of cryogenic containers. The device is capable of submerging samples at a range of speeds, enabling the user to optimize the cooling rates based on the thermal mass of the sample as well as the thermal properties of the container and biospecimen. The device consists of a stepper motor that drives a linear actuator, which enables the movement of a 3D-printed robotic arm in the vertical plane which is used to submerge the specimen rapidly into the cryogen. After development, the device was validated for its design parameters. The relative error in starting height and submersion distance was less than 1.5%, indicating a high degree of precision and consistency in positioning during operation. The resulting cooling rates showed no significant difference between manual and automated submersion, confirming the device's performance and reliability. The device performance was further assessed using a 0.25 mL insemination straw to evaluate its practical application. The cooling rate achieved was well within the range cited in previous reports as well as that predicted computationally, confirming the device's functionality. Importantly, this device can be constructed using commercially available materials at relatively low costs.
本文描述了一种自动化设备,该设备能够进行可编程的液氮浸没操作,以便为玻璃化应用实现样本的快速冷却。此处介绍的设备成本低、便于携带,并且与一系列低温容器兼容。该设备能够以多种速度浸没样本,使用户能够根据样本的热质量以及容器和生物样本的热特性来优化冷却速率。该设备由一个驱动线性致动器的步进电机组成,该线性致动器使一个3D打印的机械臂在垂直平面内移动,用于将样本快速浸没到冷冻剂中。设备开发完成后,对其设计参数进行了验证。起始高度和浸没距离的相对误差小于1.5%,表明操作过程中的定位具有高度的精确性和一致性。手动浸没和自动浸没的冷却速率结果无显著差异,证实了该设备的性能和可靠性。使用0.25毫升授精细管对设备性能进行了进一步评估,以评估其实际应用。实现的冷却速率完全在先前报告引用的范围内以及计算预测的范围内,证实了该设备的功能。重要的是,该设备可以使用市售材料以相对较低的成本构建。