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Anamorphic Preclinical SPECT Imaging with High-Resolution Silicon Double-Sided Strip Detectors

机译:高分辨率硅双侧条形探测器的临床前SPECT成像

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摘要

Preclinical single-photon emission computed tomography (SPECT) is an essential tool for studying progression, response to treatment, and physiological changes in small animal models of human disease. The wide range of imaging applications is often limited by the static design of many preclinical SPECT systems. We have developed a prototype imaging system that replaces the standard static pinhole aperture with two sets of movable, keel-edged copper-tungsten blades configured as crossed (skewed) slits. These apertures can be positioned independently between the object and detector, producing an anamorphic image in which the axial and transaxial magnications are not constrained to be equal. We incorporated a 60 mm x 60 mm, millimeter-thick megapixel silicon double-sided strip detector that permits ultrahigh-resolution imaging. While the stopping power of silicon is low for many common clinical radioisotopes, its performance is sufficient in the range of 20-60 keV to allow practical imaging experiments. The low-energy emissions of ¹²⁵I fall within this energy window, and the 60-day half life provides an advantage for longitudinal studies. The flexible nature of this system allows the future application of adaptive imaging techniques. We have demonstrated ~225-μm axial and ~175-μm transaxial resolution across a 2.65 cm³ cylindrical field of view, as well as the capability for simultaneous multi-isotope acquisitions. We describe the key advancements that have made this system operational, including bringing up a new detector readout ASIC, development of detector control software and data-processing algorithms, and characterization of operating characteristics. We describe design and fabrication of the adjustable slit aperture platform, as well as the development of an accurate imaging forward model and its application in a novel geometric calibration technique and a GPU-based ultrahigh-resolution reconstruction code.
机译:临床前单光子发射计算机断层扫描(SPECT)是研究人类疾病小动物模型中的进展,对治疗的反应以及生理变化的重要工具。通常,许多临床前SPECT系统的静态设计限制了成像应用的广泛范围。我们已经开发出一种原型成像系统,可以用两套配置为交叉(倾斜)缝的可移动龙骨边缘铜钨刀片代替标准的静态针孔孔径。这些孔可以独立地放置在物体和检测器之间,从而产生一个变形图像,在该变形图像中,轴向和跨轴磁化强度不被限制为相等。我们集成了一个60 mm x 60 mm,毫米厚的百万像素硅双面检测器,可实现超高分辨率成像。尽管对于许多常见的临床放射性同位素来说,硅的阻止能力很低,但其性能在20-60 keV的范围内足够,可以进行实际的成像实验。 125 I的低能发射量处于该能效范围之内,并且60天半衰期为纵向研究提供了优势。该系统的灵活性使将来可以应用自适应成像技术。我们已经证明了在2.65cm³的圆柱形视场上具有约225μm的轴向分辨率和约175μm的跨轴分辨率,以及同时进行多同位素采集的能力。我们描述了使该系统可运行的关键进展,包括提出了新的探测器读出ASIC,探测器控制软件和数据处理算法的开发以及运行特性的表征。我们描述了可调缝隙孔径平台的设计和制造,以及精确成像正向模型的开发及其在新型几何校准技术和基于GPU的超高分辨率重建代码中的应用。

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    Durko Heather Lynn;

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  • 年度 2014
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