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3D mapping of elastic modulus using shear wave optical micro-elastography

机译:弹性模量的3D映射使用剪切波光学微弹性成像

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摘要

Elastography provides a powerful tool for histopathological identification and clinical diagnosis based on information from tissue stiffness. Benefiting from high resolution, three-dimensional (3D), and noninvasive optical coherence tomography (OCT), optical micro-elastography has the ability to determine elastic properties with a resolution of ~10 μm in a 3D specimen. The shear wave velocity measurement can be used to quantify the elastic modulus. However, in current methods, shear waves are measured near the surface with an interference of surface waves. In this study, we developed acoustic radiation force (ARF) orthogonal excitation optical coherence elastography (ARFOE-OCE) to visualize shear waves in 3D. This method uses acoustic force perpendicular to the OCT beam to excite shear waves in internal specimens and uses Doppler variance method to visualize shear wave propagation in 3D. The measured propagation of shear waves agrees well with the simulation results obtained from finite element analysis (FEA). Orthogonal acoustic excitation allows this method to measure the shear modulus in a deeper specimen which extends the elasticity measurement range beyond the OCT imaging depth. The results show that the ARFOE-OCE system has the ability to noninvasively determine the 3D elastic map.
机译:弹性成像技术可根据组织刚度信息为组织病理学鉴定和临床诊断提供强大的工具。得益于高分辨率,三维(3D)和无创光学相干断层扫描(OCT),光学微弹性成像技术能够确定3D标本中的弹性特性,分辨率约为10μm。剪切波速度测量可以用来量化弹性模量。然而,在当前方法中,在表面波的干扰下在表面附近测量剪切波。在这项研究中,我们开发了声辐射力(ARF)正交激发光学相干弹性成像(ARFOE-OCE)以可视化3D中的剪切波。该方法使用垂直于OCT光束的声力来激发内部样本中的剪切波,并使用多普勒方差方法可视化3D中的剪切波传播。测得的剪切波传播与从有限元分析(FEA)获得的模拟结果非常吻合。正交声激发允许该方法在更深的样本中测量剪切模量,该样本将弹性测量范围扩展到OCT成像深度之外。结果表明,ARFOE-OCE系统具有无创确定3D弹性图的能力。

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