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基于虚拟辐照度探测器和软件工具箱的手持式光谱光声层析成像新方法。

A New Method Based on Virtual Fluence Detectors and Software Toolbox for Handheld Spectral Optoacoustic Tomography.

机构信息

Biomedical Optics Research Laboratory (BORL), Department of Neonatology, University Hospital Zurich (USZ), Zurich, Switzerland.

出版信息

Adv Exp Med Biol. 2018;1072:357-361. doi: 10.1007/978-3-319-91287-5_57.

Abstract

A minimal setup for optoacoustic (OA) imaging requires an ultrasound probe and a pulsed laser. Such a system is capable of imaging small blood vessels and is sensitive to variations in their oxygen saturation. However, absolute oxygenation values cannot be obtained without a proper correction for the varying light fluence resulting from the optical attenuation in the surrounding tissue. Other techniques, such as near-infrared optical tomography (NIROT) can be employed to assist OA imaging for fluence compensation. In this paper, we propose using blood vessels as virtual fluence detectors (VD), which serve as light detectors for NIROT image reconstructions. By avoiding the use of real photon detectors, a simpler system could be implemented in a hand-held device comparable in size with conventional ultrasound probes. Even for a low number of VDs it provides increased informational value which, in combination with a large number of light sources, results in precise reconstructions. We define a tomographic inverse problem based on ratios of OA signals measured at several wavelengths where optical properties of VDs, tumor and normal tissue can be reconstructed simultaneously. The use of ratio data effectively removes light source skin coupling errors for the case of emission in a single point, which is required for clinical applications. We have defined the mathematical structure of an inverse problem where chromophore concentrations for normal, tumor and embedded VDs are obtained simultaneously from this ratio data. To test the performance of our approach we show an image reconstruction on a virtual phantom with an embedded tumor in the vicinity of eight blood vessels. We conclude that this limited number of VDs, located in areas of maximum sensitivity result in high quality reconstructions. For the simplest case of a single blood vessel located in a homogeneous tissue, we present a graphical user interface based toolbox for conducting virtual experiments. The toolbox can be used to assist in the design and optimization of suitable hardware for different applications, among which imaging tumor oxygenation and ischemic lesions in the brain of preterm infants are of great clinical value.

摘要

光声(OA)成像的最小设置需要一个超声探头和一个脉冲激光器。这样的系统能够对小血管成像,并对其氧饱和度的变化敏感。然而,如果没有适当的校正,就无法获得绝对的氧合值,因为周围组织的光衰减会导致光通量的变化。其他技术,如近红外光学断层扫描(NIROT),可以用于辅助 OA 成像以进行通量补偿。在本文中,我们提出使用血管作为虚拟通量探测器(VD),它们作为 NIROT 图像重建的光探测器。通过避免使用真实的光子探测器,可以在类似于传统超声探头的手持式设备中实现更简单的系统。即使对于较少的 VD,它也提供了更高的信息价值,与大量光源结合使用,可以实现精确的重建。我们定义了一个基于在几个波长处测量的 OA 信号比值的层析成像反问题,其中可以同时重建 VD、肿瘤和正常组织的光学特性。对于在单点发射的情况下,比率数据的使用有效地消除了光源皮肤耦合误差,这是临床应用所必需的。我们已经定义了一个反问题的数学结构,其中可以从该比值数据中同时获得正常、肿瘤和嵌入 VD 的色团浓度。为了测试我们方法的性能,我们在一个虚拟的带有嵌入肿瘤的近旁有八个血管的虚拟幻像上展示了图像重建。我们得出结论,这些位于最大灵敏度区域的有限数量的 VD 导致了高质量的重建。对于位于均匀组织中的单个血管的最简单情况,我们提出了一个基于图形用户界面的工具包,用于进行虚拟实验。该工具包可用于辅助设计和优化不同应用的合适硬件,其中成像肿瘤氧合和早产儿大脑中的缺血性病变具有重要的临床价值。

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