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利用光学相干弹性成像技术进行非接触纵向剪切波成像以评估猪脑异质生物力学特性

Noncontact longitudinal shear wave imaging for the evaluation of heterogeneous porcine brain biomechanical properties using optical coherence elastography.

作者信息

Zhu Yirui, Shi Jiulin, Alvarez-Arenas Tomas E Gomez, Li Chenxi, Wang Haohao, Zhang Dong, He Xingdao, Wu Xiao

机构信息

School of Physics, Nanjing University, Nanjing, 210093, China.

School of Testing and Opto-electric Engineering, Nanchang Hangkong University, Nanchang, 330063, China.

出版信息

Biomed Opt Express. 2023 Sep 8;14(10):5113-5126. doi: 10.1364/BOE.497801. eCollection 2023 Oct 1.

Abstract

High-resolution quantification of heterogeneous brain biomechanical properties has long been an important topic. Longitudinal shear waves (LSWs) can be used to assess the longitudinal Young's modulus, but contact excitation methods have been used in most previous studies. We propose an air-coupled ultrasound transducer-based optical coherence elastography (AcUT-OCE) technique for noncontact excitation and detection of LSWs in samples and assessment of the nonuniformity of the brain's biomechanical properties. The air-coupled ultrasonic transducer (AcUT) for noncontact excitation of LSWs in the sample has a center frequency of 250 kHz. Phase-resolved Doppler optical coherence tomography (OCT) was used to image and reconstruct the propagation behavior of LSWs and surface ultrasound waves at high resolution. An agar phantom model was used to verify the feasibility of the experimental protocol, and experiments with porcine brain samples were used to assess the nonuniformity of the brain biomechanical properties. LSWs with velocities of 0.83 ± 0.11 m/s were successfully excited in the agar phantom model. The perivascular elastography results in the prefrontal cortex (PFC) of the porcine brains showed that the Young's modulus was significantly higher in the longitudinal and transverse directions on the left side of the cerebral vessels than on the right side and that the Young's modulus of the PFC decreased with increasing depth. The AcUT-OCE technique, as a new scheme for LSW applications in elastography, can be used for noncontact excitation of LSWs in brain tissue and high-resolution detection of heterogeneous brain biomechanical properties.

摘要

对异质性脑生物力学特性进行高分辨率量化长期以来一直是一个重要课题。纵向剪切波(LSWs)可用于评估纵向杨氏模量,但在大多数先前研究中使用的是接触激发方法。我们提出了一种基于空气耦合超声换能器的光学相干弹性成像(AcUT-OCE)技术,用于非接触激发和检测样品中的LSWs,并评估脑生物力学特性的不均匀性。用于在样品中对LSWs进行非接触激发的空气耦合超声换能器(AcUT)的中心频率为250kHz。采用相分辨多普勒光学相干断层扫描(OCT)对LSWs和表面超声波的传播行为进行高分辨率成像和重建。使用琼脂仿体模型验证实验方案的可行性,并对猪脑样本进行实验以评估脑生物力学特性的不均匀性。在琼脂仿体模型中成功激发了速度为0.83±0.11m/s的LSWs。猪脑前额叶皮质(PFC)的血管周围弹性成像结果表明,脑血管左侧纵向和横向的杨氏模量显著高于右侧,且PFC的杨氏模量随深度增加而降低。AcUT-OCE技术作为弹性成像中LSWs应用的一种新方案,可用于脑组织中LSWs的非接触激发和脑生物力学异质性的高分辨率检测。

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Wave-based optical coherence elastography: The 10-year perspective.基于波的光学相干弹性成像:十年展望。
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