Cheng Yi, Li Sinan, Eckersley Robert J, Elson Daniel S, Tang Meng-Xing
Imperial College London, Department of Bioengineering, London, SW7 2AZ, UK.
King's College London, Department of Biomedical Engineering, London, SE1 7EH, UK.
Biomed Opt Express. 2014 Dec 8;6(1):63-71. doi: 10.1364/BOE.6.000063. eCollection 2015 Jan 1.
Tissue optical and mechanical properties are correlated to tissue pathologic changes. This manuscript describes a dual-mode ultrasound modulated optical imaging system capable of sensing local optical and mechanical properties in reflection geometry. The optical characterisation was achieved by the acoustic radiation force assisted ultrasound modulated optical tomography (ARF-UOT) with laser speckle contrast detection. Shear waves generated by the ARF were also tracked optically by the same system and the shear wave speed was used for the elasticity measurement. Tissue mimicking phantoms with multiple inclusions buried at 11 mm depth were experimentally scanned with the dual-mode system. The inclusions, with higher optical absorption and/or higher stiffness than background, were identified based on the dual results and their stiffnesses were quantified. The system characterises both optical and mechanical properties of the inclusions compared with the ARF-UOT or the elasticity measurement alone. Moreover, by detecting the backward scattered light in reflection detection geometry, the system is more suitable for clinical applications compared with transmission geometry.
组织的光学和力学特性与组织病理变化相关。本手稿描述了一种双模式超声调制光学成像系统,该系统能够在反射几何结构中感知局部光学和力学特性。通过具有激光散斑对比度检测的声辐射力辅助超声调制光学层析成像(ARF-UOT)实现光学表征。由ARF产生的剪切波也由同一系统进行光学跟踪,并且剪切波速度用于弹性测量。使用双模式系统对埋有多个内含物且深度为11毫米的仿组织体模进行了实验扫描。基于双重结果识别出比背景具有更高光学吸收和/或更高刚度的内含物,并对其刚度进行了量化。与单独的ARF-UOT或弹性测量相比,该系统能够表征内含物的光学和力学特性。此外,通过在反射检测几何结构中检测向后散射光,与透射几何结构相比,该系统更适合临床应用。