Rademeyer Paul, Carugo Dario, Lee Jeong Yu, Stride Eleanor
Institute of Biomedical Engineering, University of Oxford, Old Road Campus Research Building, Oxford OX3 7DQ, UK.
Lab Chip. 2015 Jan 21;15(2):417-28. doi: 10.1039/c4lc01206b.
Echogenic particles, such as microbubbles and volatile liquid micro/nano droplets, have shown considerable potential in a variety of clinical diagnostic and therapeutic applications. The accurate prediction of their response to ultrasound excitation is however extremely challenging, and this has hindered the optimisation of techniques such as quantitative ultrasound imaging and targeted drug delivery. Existing characterisation techniques, such as ultra-high speed microscopy provide important insights, but suffer from a number of limitations; most significantly difficulty in obtaining large data sets suitable for statistical analysis and the need to physically constrain the particles, thereby altering their dynamics. Here a microfluidic system is presented that overcomes these challenges to enable the measurement of single echogenic particle response to ultrasound excitation. A co-axial flow focusing device is used to direct a continuous stream of unconstrained particles through the combined focal region of an ultrasound transducer and a laser. Both the optical and acoustic scatter from individual particles are then simultaneously recorded. Calibration of the device and example results for different types of echogenic particle are presented, demonstrating a high throughput of up to 20 particles per second and the ability to resolve changes in particle radius down to 0.1 μm with an uncertainty of less than 3%.
诸如微泡和挥发性液体微/纳液滴等回声粒子在各种临床诊断和治疗应用中已显示出巨大潜力。然而,准确预测它们对超声激发的响应极具挑战性,这阻碍了诸如定量超声成像和靶向药物递送等技术的优化。现有的表征技术,如超高速显微镜提供了重要的见解,但存在一些局限性;最显著的是难以获得适合统计分析的大数据集,以及需要对粒子进行物理约束,从而改变其动力学。本文提出了一种微流体系统,该系统克服了这些挑战,能够测量单个回声粒子对超声激发的响应。采用同轴流聚焦装置引导连续的无约束粒子流通过超声换能器和激光的组合焦点区域。然后同时记录单个粒子的光学散射和声散射。介绍了该装置的校准以及不同类型回声粒子的示例结果,展示了高达每秒20个粒子的高通量,以及分辨低至0.1μm的粒子半径变化的能力,不确定性小于3%。