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Temperature-controlled MPa-pressure ultrasonic cell manipulation in a microfluidic chip

机译:微流控芯片中温度控制的MPa压力超声细胞处理

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We study the temperature-independent impact on cell viability of relevant physical parameters during long-term, high-acoustic-pressure ultrasonic exposure in a microfluidic chip designed for ultrasonic-standing-wave trapping and aggregation of cells. We use a light-intensity method and 5 mu m polymer beads for accurate acoustic pressure calibration before injecting cells into the device, and we monitor the viability of A549 lung cancer cells trapped during one hour in an ultrasonic standing wave with 1 MPa pressure amplitude. The microfluidic chip is actuated by a novel temperature-controlled ultrasonic transducer capable of keeping the temperature stable around 37 degrees C with an accuracy better than +/- 0.2 degrees C, independently on the ultrasonic power and heat produced by the system, thereby decoupling any temperature effect from other relevant effects on cells caused by the high-pressure acoustic field. We demonstrate that frequency-modulated ultrasonic actuation can produce acoustic pressures of equally high magnitudes as with single-frequency actuation, and we show that A549 lung cancer cells can be exposed to 1 MPa standing-wave acoustic pressure amplitudes for one hour without compromising cell viability. At this pressure level, we also measure the acoustic streaming induced around the trapped cell aggregate, and conclude that cell viability is not affected by streaming velocities of the order of 100 mu m s(-1). Our results are important when implementing acoustophoresis methods in various clinical and biomedical applications.
机译:我们在设计用于超声驻波捕获和聚集细胞的微流控芯片中,长期,高声压超声暴露期间研究与温度无关的对相关物理参数的细胞活力的影响。在将细胞注入设备之前,我们使用光强方法和5μm聚合物珠进行精确的声压校准,并且在1 MPa压力振幅的超声波驻波中监测一小时内捕获的A549肺癌细胞的生存能力。微流体芯片由新型温控超声换能器驱动,能够独立于系统产生的超声功率和热量,使温度稳定在37摄氏度左右,精度优于+/- 0.2摄氏度,从而使任何系统去耦高压声场对细胞的其他相关影响引起的温度影响。我们证明了调频超声激励可以产生与单频激励同样高的声压,并且我们证明A549肺癌细胞可以暴露于1 MPa驻波声压幅值一小时而不会损害细胞生存力。在此压力水平下,我们还测量了在捕获的细胞聚集体周围诱导的声流,并得出结论,细胞活力不受100μm s(-1)左右的流速度的影响。在各种临床和生物医学应用中实施声泳方法时,我们的结果非常重要。

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