Department of Mechanical Engineering, University of Michigan, Ann Arbor, MI, United States of America. These two authors contribute equally to the work.
Phys Med Biol. 2018 Jun 20;63(12):125017. doi: 10.1088/1361-6560/aac7bc.
Photo-mediated ultrasound therapy (PUT) is a non-invasive, agent-free technique to shut down microvessels with high precision by promoting cavitation activity precisely in the targeted microvessels. PUT is based on the photoacoustic (PA) cavitation generated through concurrently applied nanosecond laser pulses and ultrasound bursts. In this study, a PA cavitation model is employed to understand the enhanced cavitation activity during PUT, with full consideration of the optical absorption of blood vessels. Bubble size evolution in cylindrically-shaped optical absorbers (vessels) due to rectified diffusion is simulated. Results show that the ultrasound pressure required for bubble growth decreases dramatically with the increased laser fluence. At a relatively low ultrasound driving pressure, bubble equilibrium radius increases rapidly due to concurrently applied nanosecond laser pulses and ultrasound bursts, resulting in a transition from inertial cavitation to stable cavitation. This inertial to stable transition is verified by the experimentally measured results on 0.76 mm silicone tubes filled with human whole blood with 0.5 MHz ultrasound at 0.243 MPa. This study demonstrated the potential to induce stable bubbles in blood vessels by PUT non-invasively.
光介导超声治疗(PUT)是一种非侵入性、无试剂的技术,通过在靶向微血管中精确地促进空化活性,可以高精度地关闭微血管。PUT 基于光声(PA)空化,该空化通过同时施加的纳秒激光脉冲和超声脉冲产生。在这项研究中,采用 PA 空化模型来理解 PUT 期间增强的空化活性,同时充分考虑血管的光吸收。由于整流扩散而导致的圆柱形光学吸收体(血管)中的气泡尺寸演变进行了模拟。结果表明,随着激光能量的增加,气泡生长所需的超声压力显著降低。在相对较低的超声驱动压力下,由于同时施加的纳秒激光脉冲和超声脉冲,气泡平衡半径迅速增加,导致从惯性空化到稳定空化的转变。这一从惯性到稳定的转变通过在 0.243 MPa 下用 0.5 MHz 超声对充满人全血的 0.76mm 硅橡胶管进行的实验测量结果得到了验证。本研究证明了通过 PUT 非侵入性地在血管中诱导稳定气泡的潜力。