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Two-dimensional (2D) dynamic vibration optical coherence elastography (DV-OCE) for evaluating mechanical properties: a potential application in tissue engineering

机译:用于评估机械性能的二维(2D)动态振动光学相干弹性术(DV-OCE):组织工程中的潜在应用

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摘要

Mechanical properties in tissues are an important indicator because they are associated with disease states. One of the well-known excitation sources in optical coherence elastography (OCE) to determine mechanical properties is acoustic radiation force (ARF); however, a complicated focusing alignment cannot be avoided. Another excitation source is a piezoelectric (PZT) stack to obtain strain images via compression, which can affect the intrinsic mechanical properties of tissues in tissue engineering. In this study, we report a new technique called two-dimensional (2D) dynamic vibration OCE (DV-OCE) to evaluate 2D wave velocities without tedious focusing alignment procedures and is a non-contact method with respect to the samples. The three-dimensional (3D) Fourier transform was utilized to transfer the traveling waves (x, y, t) into 3D k-space (kx, ky, f). A spatial 2D wavenumber filter and multi-angle directional filter were employed to decompose the waves with omni-directional components into four individual traveling directions. The 2D local wave velocity algorithm was used to calculate a 2D wave velocity map. Six materials, two homogeneous phantoms with 10 mm thickness, two homogeneous phantoms with 2 mm thickness, one heterogeneous phantom with 2 mm diameter inclusion and an ex vivo porcine kidney, were examined in this study. In addition, the ARF-OCE was used to evaluate wave velocities for comparison. Numerical simulations were performed to validate the proposed 2D dynamic vibration OCE technique. We demonstrate that the experimental results were in a good agreement with the results from ARF-OCE (transient OCE) and numerical simulations. Our proposed 2D dynamic vibration OCE could potentially pave the way for mechanical evaluation in tissue engineering and for laboratory translation with easy-to-setup and contactless advantages.
机译:组织中的机械性能是重要指标,因为它们与疾病状态有关。在光学相干弹性术(OCE)中的众所周知的激发源之一以确定机械性能是声学辐射力(ARF);然而,不能避免复杂的聚焦对齐。另一个激发源是压电(PZT)堆叠,以通过压缩获得应变图像,这可以影响组织工程中组织的内在力学性能。在这项研究中,我们报告了一种新技术,称为二维(2D)动态振动OCE(DV-OCE),以评估2D波速度而无乏味的聚焦对准程序,并且是关于样品的非接触方法。利用三维(3D)傅里叶变换将行驶波(x,y,t)转换为3d k空间(kx,ky,f)。空间2D波数滤波器和多角度方向滤波器被采用与全向组件一起分解成四个单独的行进方向。 2D局部波速度算法用于计算2D波速度图。六种材料,两种均匀素厚,两个均匀的幽灵,厚度为2mm,具有2mm直径为2mm的非均相体模,在本研究中检测了含有2mm的非均相的幽灵。此外,ARF-OCE用于评估波速进行比较。执行数值模拟以验证所提出的2D动态振动OCE技术。我们证明实验结果与ARF-OCE(瞬态OCE)和数值模拟的结果吻合良好。我们所提出的2D动态振动OCE可能会为组织工程中的机械评估和实验室翻译提供铺平道路,以及易于设置和无接触的优点。

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