Xia Wenfeng, Nikitichev Daniil I, Mari Jean Martial, West Simeon J, Pratt Rosalind, David Anna L, Ourselin Sebastien, Beard Paul C, Desjardins Adrien E
University College London, Department of Medical Physics and Biomedical Engineering, Gower Street, London WC1E 6BT, United Kingdom.
University College Hospital, Department of Anaesthesia, Main Theatres, Maple Bridge Link Corridor, Podium 3, 235 Euston Road, London NW1 2BU, United Kingdom.
J Biomed Opt. 2015 Aug;20(8):86005. doi: 10.1117/1.JBO.20.8.086005.
Precise device guidance is important for interventional procedures in many different clinical fields including fetal medicine, regional anesthesia, interventional pain management, and interventional oncology. While ultrasound is widely used in clinical practice for real-time guidance, the image contrast that it provides can be insufficient for visualizing tissue structures such as blood vessels, nerves, and tumors. This study was centered on the development of a photoacoustic imaging system for interventional procedures that delivered excitation light in the ranges of 750 to 900 nm and 1150 to 1300 nm, with an optical fiber positioned in a needle cannula. Coregistered B-mode ultrasound images were obtained. The system, which was based on a commercial ultrasound imaging scanner, has an axial resolution in the vicinity of 100 μm and a submillimeter, depth-dependent lateral resolution. Using a tissue phantom and 800 nm excitation light, a simulated blood vessel could be visualized at a maximum distance of 15 mm from the needle tip. Spectroscopic contrast for hemoglobin and lipids was observed with ex vivo tissue samples, with photoacoustic signal maxima consistent with the respective optical absorption spectra. The potential for further optimization of the system is discussed.
精确的设备引导对于包括胎儿医学、区域麻醉、介入性疼痛管理和介入性肿瘤学在内的许多不同临床领域的介入手术至关重要。虽然超声在临床实践中广泛用于实时引导,但其提供的图像对比度可能不足以可视化诸如血管、神经和肿瘤等组织结构。本研究聚焦于开发一种用于介入手术的光声成像系统,该系统在750至900纳米和1150至1300纳米范围内发射激发光,光纤置于针管内。同时获得了配准的B模式超声图像。该系统基于商用超声成像扫描仪,轴向分辨率约为100μm,横向分辨率为亚毫米级,且与深度有关。使用组织模型和800纳米激发光,在距针尖最大15毫米的距离处可以可视化模拟血管。通过离体组织样本观察到血红蛋白和脂质的光谱对比度,光声信号最大值与各自的光吸收光谱一致。文中还讨论了该系统进一步优化的潜力。