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Quantitative Shear Wave Imaging Optical Coherence Tomography for Noncontact Mechanical Characterization of Myocardium

机译:定量剪切波成像光学相干层析成像的心肌非接触式机械表征。

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Optical coherence elastography (OCE) is an emerging low-coherence imaging technique that provides noninvasive assessment of tissue biomechanics with high spatial resolution. Among various OCE methods, the capability of quantitative measurement of tissue elasticity is of great importance for tissue characterization and pathology detection across different samples. Here we report a quantitative OCE technique, termed quantitative shear wave imaging optical coherence tomography (Q-SWI-OCT), which enables noncontact measurement of tissue Young's modulus based on the ultra-fast imaging of the shear wave propagation inside the sample. A focused air-puff device is used to interrogate the tissue with a low-pressure short-duration air stream that stimulates a localized displacement with the scale at micron level. The propagation of this tissue deformation in the form of shear wave is captured by a phase-sensitive OCT system running with the scan of the M-mode imaging over the path of the wave propagation. The temporal characteristics of the shear wave is quantified based on the cross-correlation of the tissue deformation profiles at all the measurement locations, and linear regression is utilized to fit the data plotted in the domain of time delay versus wave propagation distance. The wave group velocity is thus calculated, which results in the quantitative measurement of the Young's modulus. As the feasibility demonstration, experiments are performed on tissue-mimicking phantoms with different agar concentrations and the quantified elasticity values with Q-SWI-OCT agree well with the uniaxial compression tests. For functional characterization of myocardium with this OCE technique, we perform our pilot experiments on ex vivo mouse cardiac muscle tissues with two studies, including 1) elasticity difference of cardiac muscle under relaxation and contract conditions and 2) mechanical heterogeneity of the heart introduced by the muscle fiber orientation. Our results suggest the potential of using Q-SWI-OCT as an essential tool for nondestructive biomechanical evaluation of myocardium.
机译:光学相干弹性成像(OCE)是一种新兴的低相干成像技术,可提供具有高空间分辨率的组织生物力学无创评估。在各种OCE方法中,组织弹性的定量测量能力对于跨不同样品的组织表征和病理检测非常重要。在这里,我们报告了一种称为定量剪切波成像光学相干断层扫描(Q-SWI-OCT)的定量OCE技术,该技术能够基于样品内部剪切波传播的超快速成像,对组织杨氏模量进行非接触式测量。聚焦的吹气装置用于用低压短时气流对组织进行讯问,该短时气流以微米水平的鳞片刺激局部位移。该组织变形以剪切波形式的传播被相敏OCT系统捕获,该系统在波传播路径上对M模式成像进行扫描。基于在所有测量位置处的组织变形轮廓的互相关性来量化剪切波的时间特性,并利用线性回归来拟合在时延与波传播距离的关系中绘制的数据。由此计算出波群速度,从而导致对杨氏模量的定量测量。作为可行性论证,对具有不同琼脂浓度的模拟组织模型进行了实验,并且使用Q-SWI-OCT量化的弹性值与单轴压缩测试非常吻合。为了使用这种OCE技术对心肌进行功能表征,我们在离体小鼠心肌组织上进行了两项实验,包括两项研究:1)松弛和收缩条件下心肌的弹性差异,以及2)心脏机械异质性。肌肉纤维取向。我们的结果表明,使用Q-SWI-OCT作为心肌无损生物力学评估必不​​可少的工具。

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  • 来源
    《Optical Elastography and Tissue Biomechanics II》|2015年|93270F.1-93270F.7|共7页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA,Department of Biomedical Engineering, University of Houston, 3605 Cullen Blvd., Houston, Texas 77204, USA;

    Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA;

    Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA;

    Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA;

    Department of Biomedical Engineering, University of Houston, 3605 Cullen Blvd., Houston, Texas 77204, USA;

    Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA;

    Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA,Texas Heart Institute, 6720 Bertner Ave., Houston, Texas 77030, USA;

    Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA,Department of Biomedical Engineering, University of Houston, 3605 Cullen Blvd., Houston, Texas 77204, USA;

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