Deliolanis Nikolaos C, Ntziachristos Vasilis
Cold Spring Harb Protoc. 2013 May 1;2013(5):438-43. doi: 10.1101/pdb.prot074245.
Fluorescence molecular tomography of tissues is a method that three-dimensionally resolves fluorescence biodistribution in vivo, with applications in small-animal research and pre-clinical diagnostics. There are many alternative imaging geometries in optical tomographic experimental systems, but in general, all imaging setups consist of four subsystems: illumination, animal mount, imaging, and automation and data acquisition (i.e., electronics and computer). Here we refer to charge-coupled device (CCD)-based systems that work in trans-illumination (i.e., illumination and detection occur on opposite sides of the subject), while a mouse or other small animal is rotated through 360° to allow photon acquisition from multiple projections. We present a procedure to tomographically reconstruct the biodistribution of fluorescence in small animals. The imaging system and equipment are described, the step-by-step image acquisition and preliminary image-processing methods are presented, and the tomographic reconstruction procedure is outlined. Finally, the method is showcased by imaging the fluorescence activity of a brain tumor of a glioblastoma mouse model.
组织荧光分子断层成像术是一种在体内对荧光生物分布进行三维解析的方法,应用于小动物研究和临床前诊断。光学断层成像实验系统中有许多不同的成像几何结构,但总体而言,所有成像装置都由四个子系统组成:照明、动物固定装置、成像以及自动化和数据采集(即电子设备和计算机)。这里我们指的是基于电荷耦合器件(CCD)的系统,其工作方式为透射照明(即照明和检测在对象的相对两侧进行),同时将小鼠或其他小动物旋转360°,以从多个投影获取光子。我们提出了一种对小动物体内荧光生物分布进行断层重建的方法。描述了成像系统和设备,介绍了逐步的图像采集和初步图像处理方法,并概述了断层重建过程。最后,通过对胶质母细胞瘤小鼠模型脑肿瘤的荧光活性进行成像展示了该方法。