Zhang Yachao, Wang Lidai
Department of Biomedical Engineering, City University of Hong Kong, Hong Kong, 999077, China.
Suzhou Institute of Biomedical Engineering and Technology, Chinese Academy of Sciences, Suzhou, 215163, China.
Biomed Opt Express. 2023 Feb 14;14(3):1137-1145. doi: 10.1364/BOE.484986. eCollection 2023 Mar 1.
High-intensity focused ultrasound (HIFU) is a promising non-invasive therapeutic technique in clinical applications. Challenges in stimulation or ablation HIFU therapy are to accurately target the treatment spot, flexibly deliver or fast-move focus points in the treatment region, and monitor therapy progress in real-time. In this paper, we develop an array-based HIFU system integrated with real-time ultrasound (US) and photoacoustic (PA) imaging. The array-based HIFU transducer can be dynamically focused in a lateral range of ∼16 mm and an axial range of ∼40 mm via electronically adjusting the excitation phase map. To monitor the HIFU therapy progress in real-time, sequential HIFU transmission, PA imaging, PA thermometry, and US imaging are implemented to display the dual-modal images and record the local temperature changes. Co-registered dual-modal images show structural and functional information and thus can guide the HIFU therapy for precise positioning and dosage control. Besides therapy, the multi-element HIFU transducer can also be used to acquire US images to precisely align the imaging coordinates with the HIFU coordinates. Phantom experiments validate the precise and dynamic steering capability of HIFU ablation. We also show that dual-modal imaging can guide HIFU in the designated region and monitor the temperature in biological tissue in real-time.
高强度聚焦超声(HIFU)是一种在临床应用中很有前景的非侵入性治疗技术。HIFU治疗在刺激或消融方面面临的挑战包括精确靶向治疗部位、在治疗区域灵活递送或快速移动焦点以及实时监测治疗进展。在本文中,我们开发了一种基于阵列的HIFU系统,该系统集成了实时超声(US)和光声(PA)成像。基于阵列的HIFU换能器可通过电子调节激励相位图在约16毫米的横向范围和约40毫米的轴向范围内动态聚焦。为了实时监测HIFU治疗进展,实施了顺序HIFU发射、PA成像、PA温度测量和US成像,以显示双模态图像并记录局部温度变化。配准后的双模态图像显示了结构和功能信息,因此可以指导HIFU治疗进行精确定位和剂量控制。除了治疗外,多元HIFU换能器还可用于获取US图像,以将成像坐标与HIFU坐标精确对齐。体模实验验证了HIFU消融的精确和动态转向能力。我们还表明,双模态成像可以在指定区域指导HIFU治疗并实时监测生物组织中的温度。