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In vivo light fluence correction for determination of tissue absorption coefficient using MultiSpectral Optoacoustic Tomography

机译:使用多光谱光声断层扫描的组织吸收系数测定的体内光线校正

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Optoacoustic Tomography is a fast developing imaging modality, combining the high resolution and penetration depth of ultrasound detection with the high contrast available from optical absorption in tissue. The spectral profile of near infrared excitation light used in optoacoustic tomography instruments is modified by absorption and scattering as it propagates deep into biological tissue. The resulting images therefore provide only qualitative insight into the distribution of tissue chromophores. Knowledge of the spectral profile of excitation light across the mouse is needed for accurate determination of the absorption coefficient in vivo. Under the conditions of constant Griineisen parameter and accurate knowledge of the light fluence, a linear relationship should exist between the initial optoacoustic pressure amplitude and the tissue absorption coefficient. Using data from a commercial optoacoustic tomography system, we implemented an iterative optimization based on the δ-Eddington approximation to the Radiative Transfer Equation to derive a light fluence map within a given object. We segmented the images based on the positions of phantom inclusions, or mouse organs, and used known scattering coefficients for initialization. Performing the fluence correction in simple phantoms allowed the expected linear relationship between recorded and independently measured absorption coefficients to be retrieved and spectral coloring to be compensated. For in vivo data, the correction resulted in an enhancement of signal intensities in deep tissues. This improved our ability to visualize organs at depth (> 5mm). Future work will aim to perform the optimization without data normalization and explore the need for methodology that enables routine implementation for in vivo imaging.
机译:光声断层扫描是一种快速发展的成像模态,将超声波检测的高分辨率和穿透深度与组织中的光学吸收中的高造影相结合。在光声断层摄影器械中使用的近红外激发光的光谱分布通过吸收和散射而被修改,因为它深入生物组织。因此,所得到的图像仅提供对组织发色团的分布的定性见解。需要了解鼠标跨越鼠标的激发光谱分布,以精确测定体内吸收系数。在恒定的Griineisen参数条件下,初始光声压力幅度和组织吸收系数之间应存在线性关系。使用来自商业光声断层扫描系统的数据,我们基于Δ-Eddington近似实现了辐射传输方程的迭代优化,以导出给定对象内的光线映射。我们将图像基于幻像夹杂物或小鼠器官的位置分割,并使用已知的初始化散射系数。在简单的幻像中进行流量校正允许在待检测的记录和独立测量的吸收系数之间进行预期的线性关系,并可以补偿光谱着色。对于体内数据,校正导致深组织中信号强度的增强。这改善了我们在深度(> 5mm)处可视化器官的能力。未来的工作旨在执行无需数据标准化的优化,并探索需要在体内成像中实现常规实现的方法。

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