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Light fluence correction for quantitative determination of tissue absorption coefficient using multi-spectral optoacoustic tomography

机译:光通量校正,用于使用多光谱光声层析成像技术定量测定组织吸收系数

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摘要

MultiSpectral Optoacoustic Tomography (MSOT) is a fast developing imaging modality, combining the high resolution and penetration depth of ultrasound with the excellent contrast from optical imaging of tissue. Absorption and scattering of the near infrared excitation light modulates the spectral profile of light as it propagates deep into biological tissue, meaning the images obtained provide only qualitative insight into the distribution of tissue chromophores. The goal of this work is to accurately recover the spectral profile of excitation light by modelling light fluence in the data reconstruction, to enable quantitative imaging. We worked with a commercial small animal MSOT scanner and developed our light fluence correction for its' cylindrical geometry. Optoacoustic image reconstruction pinpoints the sources of acoustic waves detected by the transducers and returns the initial pressure amplitude at these points. This pressure is the product of the dimensionless Grueneisen parameter, the absorption coefficient and the light fluence. Under the condition of constant Grueneisen parameter and well modelled light fluence, there is a linear relationship between the initial pressure amplitude measured in the optoacoustic image and the absorption coefficient. We were able to reproduce this linear relationship in different physical regions of an agarose gel phantom containing targets of known optical absorption coefficient, demonstrating that our light fluence model was working. We also demonstrate promising results of light fluence correction effects on in vivo data.
机译:多光谱光声层析成像(MSOT)是一种快速发展的成像方式,将超声的高分辨率和穿透深度与组织光学成像的出色对比度结合在一起。近红外激发光的吸收和散射会调节光在深入生物组织中传播时的光谱分布,这意味着所获得的图像只能定性地洞察组织发色团的分布。这项工作的目标是通过对数据重建中的光通量进行建模来准确恢复激发光的光谱轮廓,以实现定量成像。我们与一台商用小型动物MSOT扫描仪合作,针对其圆柱几何形状开发了光通量校正。光声图像重建可精确定位换能器检测到的声波源,并在这些点处返回初始压力幅度。该压力是无量纲的Grueneisen参数,吸收系数和光通量的乘积。在恒定的Grueneisen参数和良好建模的光通量的条件下,在光声图像中测量的初始压力幅度与吸收系数之间存在线性关系。我们能够在包含已知光吸收系数的靶标的琼脂糖凝胶体模的不同物理区域中重现这种线性关系,这表明我们的光通量模型正在发挥作用。我们还证明了对体内数据光通量校正效果的有希望的结果。

著录项

  • 来源
  • 会议地点 Munich(DE)
  • 作者单位

    Department of Physics, Cavendish Laboratory, CAMBRIDGE CB3 0HE, United Kingdom;

    Department of Physics, Cavendish Laboratory, CAMBRIDGE CB3 0HE, United Kingdom,EPSRC-CRUK Cancer Imaging Centre in Cambridge and Manchester;

    Department of Physics, Cavendish Laboratory, CAMBRIDGE CB3 0HE, United Kingdom,EPSRC-CRUK Cancer Imaging Centre in Cambridge and Manchester;

    Department of Physics, Cavendish Laboratory, CAMBRIDGE CB3 0HE, United Kingdom,Cancer Research UK Cambridge Institute, Cambridge, CB2 0RE,EPSRC-CRUK Cancer Imaging Centre in Cambridge and Manchester;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    optoacoustic; fluence; modelling; tissue; in vivo;

    机译:光声通量造型;组织;体内;

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