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Development of a microfluidic device with precise on-chip temperature control by integrated cooling and heating components for single cell-based analysis

机译:通过集成的冷却和加热组件开发具有精确的片上温度控制的微流体设备,用于基于单细胞的分析

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An integrated microfluidic device with active cooling and heating systems was developed in aiming a precise and rapid temperature control in the range between 2 °C and 37 °C. The platform, which consisted of a cooling chamber, a microheater, and a temperature sensor, achieved an active feedback control of on-chip local temperature. Multiphysics simulation was conducted in the coupled modeling of heat transfer, fluid flow, and Joule heating. These modeling and simulation validated the design parameters to achieve a precise and quick control of on-chip local temperature control. The main principle of the design is to enhance the external heat transfer by utilizing micro-channel array on the chip surface and increase the sample surface versus its volume by holding the sample inside the system as an ultra-thin film. Using the precooled saturated calcium chloride aqueous solution as the coolant, and the on-chip microheater as the heating unit, the temperature was able to be precisely adjusted, and meanwhile, the temperature was sensed by a thermal sensor at the region of interest. We demonstrated an actual temperature control and manipulation of the developed microfluidic cooling/heating system. The recorded temperature data showed that the developed integrated platform offered the capability of manipulating on-chip localized temperature ranging from 2 °C to 37 °C with active cooling/heating, especially for the temperature range from 2 °C to room temperature chosen due to typical cytotoxic issues with additive cryoprotective agents (CPAs). Additionally, this device provided valuable tools for studying temperature-dependent biological and chemical processes at microscale, for example, the determination of permeability of the cell membrane to water and CPAs in cryobiology study.
机译:为了将精确,快速的温度控制在2 C至37 C范围内,开发了具有主动冷却和加热系统的集成微流体设备。该平台由冷却室,微型加热器和温度传感器组成,实现了对片上局部温度的主动反馈控制。在传热,流体流动和焦耳加热的耦合模型中进行了多物理场仿真。这些建模和仿真验证了设计参数,以实现对片上本地温度控制的精确和快速控制。该设计的主要原理是通过利用芯片表面上的微通道阵列来增强外部传热,并通过将样品保持在系统内部作为超薄薄膜来增加样品表面相对于其体积。使用预冷却的饱和氯化钙水溶液作为冷却剂,并使用片上微型加热器作为加热单元,可以精确调节温度,同时,通过热传感器在目标区域感测温度。我们演示了实际的温度控制和开发的微流体冷却/加热系统的操纵。记录的温度数据表明,开发的集成平台提供了通过主动冷却/加热来控制2°C至37°C的片上局部温度的能力,特别是在2°C至室温所选择的温度范围内添加剂防冻剂(CPA)的典型细胞毒性问题。此外,该设备还提供了有价值的工具,可用于在微观规模上研究温度相关的生物学和化学过程,例如,在低温生物学研究中确定细胞膜对水和CPA的渗透性。

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