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基于完全并行辐射传输重建框架的实验性生物发光断层扫描

Experimental bioluminescence tomography with fully parallel radiative-transfer-based reconstruction framework.

作者信息

Lu Yujie, Machado Hidevaldo B, Douraghy Ali, Stout David, Herschman Harvey, Chatziioannou Arion F

机构信息

Crump Institute for Molecular Imaging, Department of Molecular and Medical Pharmacology, David Geffen School of Medicine at UCLA, Los Angeles, CA 90095, USA.

出版信息

Opt Express. 2009 Sep 14;17(19):16681-95. doi: 10.1364/OE.17.016681.

Abstract

Bioluminescence imaging is a very sensitive imaging modality, used in preclinical molecular imaging. However, in its planar projection form, it is non-quantitative and has poor spatial resolution. In contrast, bioluminescence tomography (BLT) promises to provide three dimensional quantitative source information. Currently, nearly all BLT reconstruction algorithms in use employ the diffusion approximation theory to determine light propagation in tissues. In this process, several approximations and assumptions that are made severely affect the reconstruction quality of BLT. It is therefore necessary to develop novel reconstruction methods using high-order approximation models to the radiative transfer equation (RTE) as well as more complex geometries for the whole-body of small animals. However, these methodologies introduce significant challenges not only in terms of reconstruction speed but also for the overall reconstruction strategy. In this paper, a novel fully-parallel reconstruction framework is proposed which uses a simplified spherical harmonics approximation (SPN). Using this framework, a simple linear relationship between the unknown source distribution and the surface measured photon density can be established. The distributed storage and parallel operations of the finite element-based matrix make SPN-based spectrally resolved reconstruction feasible at the small animal whole body level. Performance optimization of the major steps of the framework remarkably improves reconstruction speed. Experimental reconstructions with mouse-shaped phantoms and real mice show the effectiveness and potential of this framework. This work constitutes an important advance towards developing more precise BLT reconstruction algorithms that utilize high-order approximations, particularly second-order self-adjoint forms to the RTE for in vivo small animal experiments.

摘要

生物发光成像是一种非常灵敏的成像方式,用于临床前分子成像。然而,其平面投影形式是非定量的,空间分辨率较差。相比之下,生物发光断层扫描(BLT)有望提供三维定量源信息。目前,几乎所有正在使用的BLT重建算法都采用扩散近似理论来确定光在组织中的传播。在此过程中,所做的几个近似和假设严重影响了BLT的重建质量。因此,有必要开发新的重建方法,使用对辐射传输方程(RTE)的高阶近似模型以及针对小动物全身的更复杂几何形状。然而,这些方法不仅在重建速度方面带来了重大挑战,而且在整体重建策略方面也是如此。本文提出了一种新颖的全并行重建框架,该框架使用简化的球谐近似(SPN)。使用此框架,可以在未知源分布与表面测量的光子密度之间建立简单的线性关系。基于有限元的矩阵的分布式存储和并行运算使得基于SPN的光谱分辨重建在小动物全身水平上可行。该框架主要步骤的性能优化显著提高了重建速度。使用小鼠形状的体模和真实小鼠进行的实验重建显示了该框架的有效性和潜力。这项工作朝着开发更精确的BLT重建算法迈出了重要一步,该算法利用高阶近似,特别是对体内小动物实验的RTE的二阶自伴形式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7513/2790868/f84394f7e7fc/nihms-161609-f0001.jpg

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