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Amplitude-modulated ultrasound radiation force combined with phase-sensitive optical coherence tomography for shear wave elastography

机译:调幅超声辐射力与相敏光学相干断层扫描相结合用于剪切波弹性成像

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Tissue stiffness can be measured from the propagation speed of shear waves. Acoustic radiation force (ARF) can generate shear waves by focusing ultrasound in tissue for ~100 us. Safety considerations and electronics abilities limit ultrasound pressures. We previously presented shear wave elastography combining ARF and phase-sensitive optical coherence tomography (PhS-OCT). Here, we use amplitude-modulated ARF to enhance shear wave signal-to-noise ratio (SNR) at low pressures. Experiments were performed on tissue-mimicking phantoms. ARF was applied using a single-element transducer, driven by a 7.5 MHz, 3-ms, sine wave modulated in amplitude by a linear-swept frequency (1 to 7 kHz). Pressures between 1 to 3 MPa were tested. Displacements were tracked using PhS-OCT and numerically compressed using pulse compression methods detailed in previous work. SNR was compared to that of 200-μs bursts. Stiffness maps were reconstructed using time-of-flight computations. 200-μs bursts give barely detectable displacements at 1 MPa (3.7 dB SNR). Pulse compression gives 36.2 dB at 1.5 MPa. In all cases with detectable displacements, shear wave speeds were determined in 5%-gelatin and 10%-gelatin phantoms and compared to literature values. Applicability to ocular tissues (cornea, intraocular lens) is under investigation.
机译:组织刚度可以通过剪切波的传播速度来测量。通过将超声聚焦在组织中约100 us,声辐射力(ARF)可以产生剪切波。安全考虑和电子功能限制了超声压力。我们先前介绍了结合ARF和相敏光学相干断层扫描(PhS-OCT)的剪切波弹性成像。在这里,我们使用调幅ARF来增强低压下的剪切波信噪比(SNR)。在模仿组织的模型上进行了实验。使用单元素换能器施加ARF,该换能器由7.5 MHz,3毫秒正弦波驱动,振幅由线性扫描频率(1至7 kHz)调制。测试了1到3 MPa之间的压力。使用PhS-OCT跟踪位移,并使用先前工作中详述的脉冲压缩方法对其进行数值压缩。将SNR与200μs突发的SNR进行了比较。使用飞行时间计算重建刚度图。 200μs的脉冲在1 MPa(3.7 dB SNR)时几乎无法检测到位移。脉冲压缩在1.5 MPa时产生36.2 dB。在所有具有可检测位移的情况下,均以5%明胶和10%明胶体模确定剪切波速度,并将其与文献值进行比较。正在研究对眼组织(角膜,人工晶状体)的适用性。

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