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用于同时进行消融和超声成像的双模态光纤探头。

Dual-modality fibre optic probe for simultaneous ablation and ultrasound imaging.

作者信息

Zhang Shaoyan, Zhang Edward Z, Beard Paul C, Desjardins Adrien E, Colchester Richard J

机构信息

Department of Medical Physics and Biomedical Engineering, University College London, Gower Street, London WC1E 6BT, UK.

Wellcome/EPSRC Centre for Interventional and Surgical Sciences, University College London, Charles Bell House, Foley Street, London W1W 7TY, UK.

出版信息

Commun Eng. 2022 Jul 28;1(1). doi: 10.1038/s44172-022-00020-9.

Abstract

All-optical ultrasound (OpUS) is an emerging high resolution imaging paradigm utilising optical fibres. This allows both therapeutic and imaging modalities to be integrated into devices with dimensions small enough for minimally invasive surgical applications. Here we report a dual-modality fibre optic probe that synchronously performs laser ablation and real-time all-optical ultrasound imaging for ablation monitoring. The device comprises three optical fibres: one each for transmission and reception of ultrasound, and one for the delivery of laser light for ablation. The total device diameter is < 1 mm. Ablation monitoring was carried out on porcine liver and heart tissue ex vivo with ablation depth tracked using all-optical M-mode ultrasound imaging and lesion boundary identification using a segmentation algorithm. Ablation depths up to 2.1 mm were visualised with a good correspondence between the ultrasound depth measurements and visual inspection of the lesions using stereomicroscopy. This work demonstrates the potential for OpUS probes to guide minimally invasive ablation procedures in real time.

摘要

全光学超声(OpUS)是一种利用光纤的新兴高分辨率成像模式。这使得治疗和成像方式都能够集成到尺寸小到足以用于微创手术应用的设备中。在此,我们报告一种双模态光纤探头,其能同步执行激光消融和用于消融监测的实时全光学超声成像。该设备由三根光纤组成:一根用于超声的发射,一根用于超声的接收,还有一根用于输送用于消融的激光。设备的总直径小于1毫米。在离体的猪肝和心脏组织上进行了消融监测,使用全光学M型超声成像跟踪消融深度,并使用分割算法识别病变边界。通过超声深度测量与使用立体显微镜对病变进行目视检查之间的良好对应关系,可视化了高达2.1毫米的消融深度。这项工作证明了OpUS探头实时引导微创消融手术的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a8c/10955961/ceeb4a53ee59/44172_2022_20_Fig1_HTML.jpg

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