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High speed imaging of remotely induced shear waves using phase-sensitive optical coherence tomography

机译:使用相位敏感光学相干断层扫描的远程诱导剪切波的高速成像

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Shear wave optical coherence elastography (SW-OCE) is a quantitative approach to assess tissue structures and elasticity with high resolution, based on OCT. Shear wave imaging (SWI) is the foundation of shear wave elasticity imaging (SWEI), which is a quantitative approach to assess tissue structures and pathological status. In order to enhance elastography resolution to micron scale, the shear waves needs to be highly localized, with short wavelength and high frequency (second order of kHz), which also places stricter requirement on the temporal resolution requirements of SWI device. In this paper, we introduced two approaches to remotely induce high frequency shear waves within tissue samples: ultrasound acoustic radiation force impulse (ARFI), and high energy nanosecond pulsed laser. The maximum frequency of pulsed laser induced shear waves in tissue-mimicking phantoms can go up to 25 kHz, which is not possible to be captured and tracked by other SWI modalities. We use a custom-built SWI-OCT system to visualize and capture the nanometer scale shear waves, achieving a spatial resolution up to 15 um and frame rate of up to 92 kHz. The dynamic wave propagation data was then used for the reconstruction of localized wave velocity and elasticity. This study demonstrates the non-contact shear wave generation with pulsed laser source, and ultra-fast, high-resolution sectional acoustical wave tracking with remarkable sensitivity, promising a future clinical application for a high-resolution quantitative mapping of elasticity in vivo, non-contact and real time in OCT-accessible tissue, especially in ocular tissues.
机译:剪切波光学相干弹性术(SW-OCE)是一种定量方法,以评估基于OCT的高分辨率的组织结构和弹性。剪切波成像(SWI)是剪切波弹性成像(SWEI)的基础,这是评估组织结构和病理状态的定量方法。为了增强弹性摄影分辨率以微米尺度,剪切波需要高度本地化,具有短波长和高频(kHz的二阶),这也对SWI设备的时间分辨率要求进行更严格的要求。在本文中,我们介绍了两种远程诱导组织样品中的高频剪切波的方法:超声声辐射力脉冲(ARFI)和高能纳秒脉冲激光器。脉冲激光诱导剪切波在组织模拟幻像中的最大频率可以高达25kHz,这是不可能被其他SWI模式捕获和跟踪。我们使用定制的SWI-OCT系统来可视化和捕获纳米缩放剪切波,可实现高达15μm的空间分辨率和高达92 kHz的帧速率。然后使用动态波传播数据来重建局部波速和弹性。本研究展示了具有脉冲激光源的非接触式剪力波产生,以及超快速的高分辨率截面声波跟踪,具有显着灵敏度,很有希望在体内的高分辨率定量映射的未来临床应用,非在OCT可访问组织中的接触和实时,尤其是在眼部组织中。

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