Zhang Jun, Chen Duofang, Liang Jimin, Xue Huadan, Lei Jing, Wang Qin, Chen Dongmei, Meng Ming, Jin Zhengyu, Tian Jie
School of Life Science and Technology, Xidian University, Xi'an, Shaanxi 710071, China.
School of Life Science and Technology, Xidian University, Xi'an, Shaanxi 710071, China ; contributed equally.
Biomed Opt Express. 2014 May 20;5(6):1861-76. doi: 10.1364/BOE.5.001861. eCollection 2014 Jun 1.
Combining two or more imaging modalities to provide complementary information has become commonplace in clinical practice and in preclinical and basic biomedical research. By incorporating the structural information provided by computed tomography (CT) or magnetic resonance imaging (MRI), the ill poseness nature of bioluminescence tomography (BLT) can be reduced significantly, thus improve the accuracies of reconstruction and in vivo quantification. In this paper, we present a small animal imaging system combining multi-view and multi-spectral BLT with MRI. The independent MRI-compatible optical device is placed at the end of the clinical MRI scanner. The small animal is transferred between the light tight chamber of the optical device and the animal coil of MRI via a guide rail during the experiment. After the optical imaging and MRI scanning procedures are finished, the optical images are mapped onto the MRI surface by interactive registration between boundary of optical images and silhouette of MRI. Then, incorporating the MRI structural information, a heterogeneous reconstruction algorithm based on finite element method (FEM) with L 1 normalization is used to reconstruct the position, power and region of the light source. In order to validate the feasibility of the system, we conducted experiments of nude mice model implanted with artificial light source and quantitative analysis of tumor inoculation model with MDA-231-GFP-luc. Preliminary results suggest the feasibility and effectiveness of the prototype system.
在临床实践以及临床前和基础生物医学研究中,结合两种或更多种成像模态以提供互补信息已变得很常见。通过纳入计算机断层扫描(CT)或磁共振成像(MRI)提供的结构信息,生物发光断层扫描(BLT)的不适定性质可显著降低,从而提高重建和体内定量的准确性。在本文中,我们展示了一种将多视角和多光谱BLT与MRI相结合的小动物成像系统。独立的与MRI兼容的光学设备放置在临床MRI扫描仪的末端。在实验过程中,小动物通过导轨在光学设备的避光腔室和MRI的动物线圈之间转移。光学成像和MRI扫描程序完成后,通过光学图像边界与MRI轮廓之间的交互式配准,将光学图像映射到MRI表面。然后,结合MRI结构信息,使用基于有限元方法(FEM)并带有L1归一化的非均匀重建算法来重建光源的位置、功率和区域。为了验证该系统的可行性,我们对植入人造光源的裸鼠模型进行了实验,并对MDA - 231 - GFP - luc肿瘤接种模型进行了定量分析。初步结果表明了该原型系统的可行性和有效性。