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基于同轴共焦双频聚焦超声和涡旋光束的协同超声溶栓

Synergistic sonothrombolysis based on coaxial confocal dual-frequency focused ultrasound and vortex beams.

作者信息

Meng Tinghui, Sheng Zelin, Feng Tingzhen, Guo Gepu, Ma Qingyu

机构信息

School of Computer and Electronic Information, Nanjing Normal University, Nanjing 210023, China.

School of Computer and Electronic Information, Nanjing Normal University, Nanjing 210023, China; Key Laboratory of Numerical Simulation for Large Scale Complex Systems, Ministry of Education, Nanjing Normal University, Nanjing 210023, China.

出版信息

Ultrason Sonochem. 2025 May;116:107314. doi: 10.1016/j.ultsonch.2025.107314. Epub 2025 Mar 17.

Abstract

Focused ultrasound (FU) acts as a non-invasive targeted therapy for thrombus dissolution, leveraging its mechanical and cavitation effects. The thrombolysis efficiency can be markedly improved with the incorporation of an assisted focused acoustic vortex (FAV). Nevertheless, when employing FAV-assisted FU thrombolysis with two focused transducers positioned orthogonally, the FAV's trapping force is reduced due to the co-directional acoustic radiation force (ARF) from the FU. We have devised a synergistic sonothrombolysis strategy that utilizes coaxial confocal dual-frequency FU and FAV beams, implemented through a focused sector array. The enhancement mechanism of thrombolysis was explored through comprehensive analyses of the focal area, trapping capability, and shear stress of both FAV and FU. Findings indicate that the rotational shear stress generated by FAV can disrupt the thrombus surface structure, dislodge debris from the clots, and aid in the penetration of drug molecules. The FAV's trapping force is strong enough to counteract the drag from venous flow, thereby enhancing the interaction between trapped clot debris and microbubbles within the focal region. Despite the FAV's peak pressure being lower than that of FU, the combined FAV + FU sonication exhibits enhanced cavitation effects, as evidenced by the increased absorbance of iodide ions and a faster rise in speed. These theoretical insights were confirmed by experimental measurements of free radicals, stable and inertial cavitation doses, and lysis rates, using FU and FAV for thrombolysis in both static conditions and blood flow. The results show that, with its trapping capability, FAV's thrombolysis efficiency in a blood flow condition (5 cm/s) is nearly unchanged from that in a stable environment and is significantly better than FU's. An impressive efficiency increase of up to 61 % was achieved using the synergistic thrombolysis method. The proposed synergistic thrombolysis strategy shows promise for developing a safer and more effective treatment for blood flow applications, utilizing a focused sector array and demonstrating significant potential for biomedical applications.

摘要

聚焦超声(FU)利用其机械效应和空化效应,作为一种用于血栓溶解的非侵入性靶向治疗方法。通过结合辅助聚焦声涡(FAV),溶栓效率可得到显著提高。然而,当使用两个正交放置的聚焦换能器进行FAV辅助FU溶栓时,由于FU产生的同向声辐射力(ARF),FAV的捕获力会降低。我们设计了一种协同超声溶栓策略,该策略利用同轴共焦双频FU和FAV束,通过聚焦扇形阵列实现。通过对FAV和FU的焦点区域、捕获能力和剪切应力进行综合分析,探索了溶栓的增强机制。研究结果表明,FAV产生的旋转剪切应力可破坏血栓表面结构,使血凝块中的碎片脱落,并有助于药物分子的渗透。FAV的捕获力足以抵消静脉血流的阻力,从而增强聚焦区域内捕获的血凝块碎片与微泡之间的相互作用。尽管FAV的峰值压力低于FU,但FAV + FU联合超声处理表现出增强的空化效应,碘离子吸光度增加和速度更快上升证明了这一点。这些理论见解通过在静态条件和血流中使用FU和FAV进行溶栓的自由基、稳定和惯性空化剂量以及溶解率的实验测量得到了证实。结果表明,凭借其捕获能力,FAV在血流条件(5 cm/s)下的溶栓效率与稳定环境下的效率几乎没有变化,且明显优于FU。使用协同溶栓方法实现了高达61%的显著效率提升。所提出的协同溶栓策略有望开发出一种更安全、更有效的血流应用治疗方法,利用聚焦扇形阵列,并在生物医学应用中显示出巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9a7/11979996/6e53fadc6d41/gr1.jpg

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