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A novel optical detector concept for dedicated and multi-modality in vivo small animal imaging

机译:一种新型光学探测器概念,用于体内小动物成像中的专用和多种模式

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An optical detector suitable for inclusion in tomographic arrangements for non-contact in vivo bioluminescence and fluorescence imaging applications is proposed. It consists of a microlens array (MLA) intended for field-of-view definition, a large-field complementary metal-oxide-semiconductor (CMOS) chip for light detection, a septum mask for cross-talk suppression, and an exchangeable filter to block excitation light. Prototype detector units with sensitive areas of 2.5 cm × 5 cm each were assembled. The CMOS sensor constitutes a 512 × 1024 photodiode matrix at 48 μm pixel pitch. Refractive MLAs with plano-convex lenses of 480 μm in diameter and pitch were selected resulting in a 55 × 105 lens matrix. The CMOS sensor is aligned on the focal plane of the MLA at 2.15 mm distance. To separate individual microlens images an opaque multi-bore septum mask of 2.1mm in thickness and bore diameters of 400 μm at 480 μm pitch, aligned with the lens pattern, is placed between MLA and CMOS. Intrinsic spatial detector resolution and sensitivity was evaluated experimentally as a function of detector-object distance. Due to its small overall dimensions such detectors can be favorably packed for tomographic imaging (optical diffusion tomography, ODT) yielding complete 2 π field-of-view coverage. We also present a design study of a device intended to simultaneously image positron labeled substrates (positron emission tomography, PET) and optical molecular probes in small animals such as mice and rats. It consists of a cylindrical allocation of optical detector units which form an inner detector ring while PET detector blocks are mounted in radial extension, those gaining complementary information in a single, intrinsically coregistered experimental data acquisition study. Finally, in a second design study we propose a method for integrated optical and magnetic resonance imaging (MRI) which yields in vivo functional/molecular information that is intrinsically registered with the anatomy of the image object.
机译:提出了一种适用于夹杂物在体内生物发光和荧光成像应用中非接触的断层布置的光学检测器。它由用于视场定义的微透镜阵列(MLA)组成,用于光检测的大场互补金属 - 氧化物半导体(CMOS)芯片,用于串扰抑制的隔膜掩模,以及可更换滤波器块励磁光。敏感区域的原型探测器单元每分配2.5厘米×5厘米。 CMOS传感器以48μm像素间距构成512×1024光电二极管矩阵。选择直径480μm的平面凸透镜和俯仰的折射MLA,得到55×105透镜矩阵。 CMOS传感器在MLA的焦点平面上对准2.15mm距离。分离单独的微透镜图像,厚度为2.1mm的不透明多孔隔膜,在480μm间距为400μm的孔径,与透镜图案对齐,置于MLA和CMOS之间。根据检测器物体距离,通过实验评估本征空间检测器分辨率和灵敏度。由于其小的整体尺寸,这种探测器可以有利地包装用于断层摄影成像(光学扩散断层扫描,ODT)屈服完整的2π视场覆盖。我们还提出了一种用于同时图像标记的基板(正电子发射断层扫描,PET)和小鼠等小鼠和大鼠的光学分子探针的装置的设计研究。它由形成内部检测器环的光学检测器单元的圆柱形分配,而PET检测器块安装在径向延伸中,那些在单一的内在内核的实验数据采集研究中获得互补信息。最后,在第二种设计研究中,我们提出了一种用于集成光学和磁共振成像(MRI)的方法,其在内部地注册的体内功能/分子信息,其在图像对象的解剖学中。

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