Zeraatkar Navid, Farahani Mohammad Hossein, Rahmim Arman, Sarkar Saeed, Ay Mohammad Reza
Research Center for Molecular and Cellular Imaging, Tehran University of Medical Sciences, Tehran 1419733141, Iran.
Department of Radiology, Johns Hopkins University, Baltimore, Maryland 21287 and Department of Electrical and Computer Engineering, Johns Hopkins University, Baltimore, Maryland 21218.
Med Phys. 2016 May;43(5):2581. doi: 10.1118/1.4947127.
Given increasing efforts in biomedical research utilizing molecular imaging methods, development of dedicated high-performance small-animal SPECT systems has been growing rapidly in the last decade. In the present work, we propose and assess an alternative concept for SPECT imaging enabling desktop open-gantry imaging of small animals.
The system, PERSPECT, consists of an imaging desk, with a set of tilted detector and pinhole collimator placed beneath it. The object to be imaged is simply placed on the desk. Monte Carlo (MC) and analytical simulations were utilized to accurately model and evaluate the proposed concept and design. Furthermore, a dedicated image reconstruction algorithm, finite-aperture-based circular projections (FABCP), was developed and validated for the system, enabling more accurate modeling of the system and higher quality reconstructed images. Image quality was quantified as a function of different tilt angles in the acquisition and number of iterations in the reconstruction algorithm. Furthermore, more complex phantoms including Derenzo, Defrise, and mouse whole body were simulated and studied.
The sensitivity of the PERSPECT was 207 cps/MBq. It was quantitatively demonstrated that for a tilt angle of 30°, comparable image qualities were obtained in terms of normalized squared error, contrast, uniformity, noise, and spatial resolution measurements, the latter at ∼0.6 mm. Furthermore, quantitative analyses demonstrated that 3 iterations of FABCP image reconstruction (16 subsets/iteration) led to optimally reconstructed images.
The PERSPECT, using a novel imaging protocol, can achieve comparable image quality performance in comparison with a conventional pinhole SPECT with the same configuration. The dedicated FABCP algorithm, which was developed for reconstruction of data from the PERSPECT system, can produce high quality images for small-animal imaging via accurate modeling of the system as incorporated in the forward- and back-projection steps. Meanwhile, the developed MC model and the analytical simulator of the system can be applied for further studies on development and evaluation of the system.
鉴于在利用分子成像方法进行生物医学研究方面的努力不断增加,在过去十年中,专用高性能小动物单光子发射计算机断层扫描(SPECT)系统的开发迅速发展。在本研究中,我们提出并评估了一种用于SPECT成像的替代概念,该概念能够对小动物进行桌面开放式龙门成像。
该系统名为PERSPECT,由一个成像台组成,其下方放置有一组倾斜的探测器和针孔准直器。待成像的物体只需放置在工作台上。利用蒙特卡罗(MC)和解析模拟来准确建模和评估所提出的概念和设计。此外,还为该系统开发并验证了一种专用的图像重建算法,即基于有限孔径的圆形投影(FABCP),该算法能够更准确地对系统进行建模并生成更高质量的重建图像。图像质量根据采集过程中的不同倾斜角度以及重建算法中的迭代次数进行量化。此外,还模拟并研究了更复杂的体模,包括德伦佐体模、德弗里斯体模和小鼠全身。
PERSPECT的灵敏度为207 cps/MBq。定量结果表明,对于30°的倾斜角度,在归一化平方误差、对比度、均匀性、噪声和空间分辨率测量方面获得了可比的图像质量,后者约为0.6毫米。此外,定量分析表明,FABCP图像重建的3次迭代(每次迭代16个子集)可得到最优重建图像。
采用新颖成像协议的PERSPECT与具有相同配置的传统针孔SPECT相比,能够实现可比的图像质量性能。为从PERSPECT系统重建数据而开发的专用FABCP算法,通过在前向和后向投影步骤中对系统进行精确建模,可为小动物成像生成高质量图像。同时,所开发的系统MC模型和解析模拟器可用于该系统开发和评估的进一步研究。