Nguyen Thu-Mai, Song Shaozhen, Arnal Bastien, Wong Emily Y, Huang Zhihong, Wang Ruikang K, O'Donnell Matthew
University of Washington, Department of Bioengineering, 3720 15th Avenue NE, Seattle, Washington 98195.
University of Washington, Department of Bioengineering, 3720 15th Avenue NE, Seattle, Washington 98195bUniversity of Dundee, School of Engineering, Physics and Mathematics, Scotland, United Kingdom.
J Biomed Opt. 2014 Jan;19(1):16013. doi: 10.1117/1.JBO.19.1.016013.
Assessing the biomechanical properties of soft tissue provides clinically valuable information to supplement conventional structural imaging. In the previous studies, we introduced a dynamic elastography technique based on phase-sensitive optical coherence tomography (PhS-OCT) to characterize submillimetric structures such as skin layers or ocular tissues. Here, we propose to implement a pulse compression technique for shear wave elastography. We performed shear wave pulse compression in tissue-mimicking phantoms. Using a mechanical actuator to generate broadband frequency-modulated vibrations (1 to 5 kHz), induced displacements were detected at an equivalent frame rate of 47 kHz using a PhS-OCT. The recorded signal was digitally compressed to a broadband pulse. Stiffness maps were then reconstructed from spatially localized estimates of the local shear wave speed. We demonstrate that a simple pulse compression scheme can increase shear wave detection signal-to-noise ratio (>12 dB gain) and reduce artifacts in reconstructing stiffness maps of heterogeneous media.
评估软组织的生物力学特性可提供具有临床价值的信息,以补充传统的结构成像。在先前的研究中,我们引入了一种基于相敏光学相干断层扫描(PhS-OCT)的动态弹性成像技术,以表征诸如皮肤层或眼组织等亚毫米级结构。在此,我们建议实施一种用于剪切波弹性成像的脉冲压缩技术。我们在组织模拟体模中进行了剪切波脉冲压缩。使用机械致动器产生宽带调频振动(1至5kHz),使用PhS-OCT以47kHz的等效帧率检测诱导位移。记录的信号被数字压缩成一个宽带脉冲。然后从局部剪切波速度的空间定位估计中重建刚度图。我们证明,一种简单的脉冲压缩方案可以提高剪切波检测的信噪比(增益>12dB),并减少在重建异质介质刚度图时的伪像。