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High-Intensity Ultrasound in Adherent Cell Sorting and Tissue Ablation.

机译:贴壁细胞分选和组织消融中的高强度超声。

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摘要

High-power ultrasound has been applied in many biomedical applications. However, many new applications and the associated challenges need to be addressed to advance high power ultrasound technology in medicine and biology. In this dissertation, the research objectives are: (1) to explore new high- intensity focused ultrasound (HIFU) applications in biology; (2) to enhance tissue ablation efficiency for more power efficient HIFU therapies. In order to achieve these objectives, several tasks were executed, and the background, design method and materials, experimental results and conclusions for each task were presented.;To explore new HIFU application in biology, the use of ultrasonic waves to release pallets for isolation of adherent live cells was investigated with high cell survivability. This technique has the potential for use in high-throughput cell sorting. This highly selective pallet/cell release method yields significantly higher cell viability after single-pallet release, comparing with other existing methods, largely resulting from the relatively slow release speed and low radiation forces.;To investigate more efficient HIFU therapies, a combined modeling and experimentation approach was employed to understand the physics behind the differences in tissue ablation behavior between single- and multi-frequency ultrasound. It is found that tissue ablation using multi-frequency HIFU yielded a up to 37.9 % higher temperature rise rate compared to ablation using single-frequency HIFU under the same exposure power and time. This finding has been verified by both thermocouple and MRI measurements, but cannot be explained well by the Pennes bio-heating theory, which does not consider cavitation. This more effective tissue ablation using multi-frequency HIFU is likely attributed to the enhanced cavitation effect based on the obtained cavitation detection results.;To investigate the cavitation effect under multi-frequency sonications, the enhanced effect of dual-frequency ultrasonic irradiation on cavitation yield was reported, for the first time, via the cavitation bubble modeling, followed by the cavitation yield characterization using the PCD (passive cavitation detection) method. Two-frequency (1.5 MHz/3 MHz) orthogonal pulse ultrasound was used in the tests. It was found that the simultaneous irradiation of dual frequency ultrasound can produce a significant increase in cavitation yield compared with single frequency irradiation. The possible mechanisms of the enhanced effect were briefly discussed and explained by the single-bubble cavitation model, where the calculated radiated pressure generated by acoustic bubble cavitation was found to be greater in dual-frequency cases.;Both the ultrasonic cell sorting study and the multi-frequency HIFU study suggest that high power ultrasound is promising for a broader range of applications in medicine and biology.
机译:高功率超声已应用于许多生物医学应用中。但是,为了解决医学和生物学领域的高功率超声技术,需要解决许多新的应用和相关的挑战。本文的研究目标是:(1)探索高强度聚焦超声(HIFU)在生物学中的新应用; (2)增强组织消融效率,以实现更高效的HIFU治疗。为了实现这些目标,我们执行了几个任务,并介绍了每个任务的背景,设计方法和材料,实验结果以及结论。为了探索HIFU在生物学中的新应用,利用超声波释放托盘进行隔离以高细胞存活率研究贴壁活细胞的数量。该技术具有用于高通量细胞分选的潜力。与其他现有方法相比,这种高度选择性的托盘/细胞释放方法与其他现有方法相比,在单托盘释放后可产生更高的细胞活力,这主要是由于释放速度相对较慢且辐射力较低。实验方法被用来理解单频和多频超声之间组织消融行为差异背后的物理学。发现在相同的曝光功率和时间下,与使用单频HIFU进行消融相比,使用多频HIFU进行组织消融产生的温升率高出高达37.9%。这一发现已经通过热电偶和MRI测量得到了证实,但是不能用不考虑气蚀的Pennes生物加热理论来很好地解释。基于获得的空化检测结果,使用多频HIFU进行更有效的组织消融可能归因于增强的空化效果。为了研究多频超声处理下的空化效果,双频超声辐照对空化产量的增强作用首次通过空化气泡模型进行了报道,随后使用PCD(被动空化检测)方法对空化产率进行了表征。测试中使用了两频(1.5 MHz / 3 MHz)正交脉冲超声。已经发现,与单频辐射相比,双频超声的同时辐射可以显着提高空化产率。通过单气泡空化模型简要讨论和解释了增强效果的可能机制,在该模型中,发现在双频情况下由声气泡空化产生的计算辐射压力更大。多频HIFU研究表明,高功率超声有望在医学和生物学领域得到更广泛的应用。

著录项

  • 作者

    Guo, Sijia.;

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Mechanical engineering.;Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 172 p.
  • 总页数 172
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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