首页> 外文会议>Conference on Optical Elastography and Tissue Biomechanics III >Elasticity Imaging of Speckle-free Tissue Regions with Moving Acoustic Radiation Force and Phase-sensitive Optical Coherence Tomography
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Elasticity Imaging of Speckle-free Tissue Regions with Moving Acoustic Radiation Force and Phase-sensitive Optical Coherence Tomography

机译:具有移动声辐射力和相位敏光学相干断层扫描的无斑块组织区域的弹性成像

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Phase-sensitive optical coherence tomography (PhS-OCT) can be utilized for quantitative shear-wave elastography using speckle tracking. However, current approaches cannot directly reconstruct elastic properties in speckle-less or speckle-free regions, for example within the crystalline lens in ophthalmology. Investigating the elasticity of the crystalline lens could improve understanding and help manage presbyopia-related pathologies that change biomechanical properties. We propose to reconstruct the elastic properties in speckle-less regions by sequentially launching shear waves with moving acoustic radiation force (mARF), and then detecting the displacement at a specific speckle-generating position, or limited set of positions, with PhS-OCT. A linear ultrasound array (with a center frequency of 5 MHz) interfaced with a programmable imaging system was designed to launch shear waves by mARF. Acoustic sources were electronically translated to launch shear waves at laterally shifted positions, where displacements were detected by speckle tracking images produced by PhS-OCT operating in M-B mode with a 125-kHz A-line rate. Local displacements were calculated and stitched together sequentially based on the distance between the acoustic source and the detection beam. Shear wave speed, and the associated elasticity map, were then reconstructed based on a time-of-flight algorithm. In this study, moving-source shear wave elasticity imaging (SWEI) can highlight a stiff inclusion within an otherwise homogeneous phantom but with a CNR increased by 3.15 dB compared to a similar image reconstructed with moving-detector SWEI. Partial speckle-free phantoms were also investigated to demonstrate that the moving-source sequence could reconstruct the elastic properties of speckle-free regions. Results show that harder inclusions within the speckle-free region can be detected, suggesting that this imaging method may be able to detect the elastic properties of the crystalline lens.
机译:相敏光学相干断层扫描(PHS-OCT)可用于使用斑点跟踪定量剪切波弹性造影。然而,电流方法不能直接在散斑或无斑点区域中直接重建弹性性质,例如在眼科中的结晶透镜内。调查结晶镜片的弹性可以改善理解,帮助管理改变生物力学特性的老化相关病理学。我们建议通过用移动声辐射力(MARF)顺序地发射剪切波来重建斑点区域中的弹性特性,然后在特定散斑发电位置或有限的位置,具有PHS-OCT的剪切。设计与可编程成像系统接口的线性超声阵列(具有5MHz的中心频率)旨在通过Marf发射剪切波。声源被电动转换为在横向移位位置的发射剪切波,其中通过在M-B模式下在M-B模式下操作的PHS-OCT产生的散斑跟踪图像来检测位移,以125 kHz A线速率。基于声学源和检测光束之间的距离来计算并缝合局部位移并缝合在一起。然后基于飞行时间算法重建剪力波速度和相关的弹性图。在该研究中,移动源剪切波弹性成像(SWEI)可以在其他均匀的幽灵内突出刚性包含,但与用移动检测器SWEI重建的类似图像相比,CNR增加了3.15dB。还研究了局部斑点的幽灵,以证明移动源序列可以重建无斑点区域的弹性性质。结果表明,可以检测到无斑点区域内的更难的夹杂物,表明该成像方法可以检测结晶透镜的弹性特性。

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