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首页> 外文期刊>IEEE Transactions on Medical Imaging >Bioluminescence Tomography Based on Gaussian Weighted Laplace Prior Regularization for In Vivo Morphological Imaging of Glioma
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Bioluminescence Tomography Based on Gaussian Weighted Laplace Prior Regularization for In Vivo Morphological Imaging of Glioma

机译:基于高斯加权拉普拉斯事前正则化的生物发光层析成像胶质瘤的体内形态学成像

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摘要

Bioluminescence tomography (BLT) is a powerful non-invasive molecular imaging tool for in vivo studies of glioma in mice. However, because of the light scattering and resulted ill-posed problems, it is challenging to develop a sufficient reconstruction method, which can accurately locate the tumor and define the tumor morphology in three-dimension. In this paper, we proposed a novel Gaussian weighted Laplace prior (GWLP) regularization method. It considered the variance of the bioluminescence energy between any two voxels inside an organ had a non-linear inverse relationship with their Gaussian distance to solve the over-smoothed tumor morphology in BLT reconstruction. We compared the GWLP with conventional Tikhonov and Laplace regularization methods through various numerical simulations and in vivo orthotopic glioma mouse model experiments. The in vivo magnetic resonance imaging and ex vivo green fluorescent protein images and hematoxylin-eosin stained images of whole head cryoslicing specimens were utilized as gold standards. The results demonstrated that GWLP achieved the highest accuracy in tumor localization and tumor morphology preservation. To the best of our knowledge, this is the first study that achieved such accurate BLT morphological reconstruction of orthotopic glioma without using any segmented tumor structure from any other structural imaging modalities as the prior for reconstruction guidance. This enabled BLT more suitable and practical for in vivo imaging of orthotopic glioma mouse models.
机译:生物发光层析成像(BLT)是一种功能强大的非侵入性分子成像工具,用于小鼠体内神经胶质瘤的体内研究。然而,由于光散射和由此引起的不适定问题,开发一种能够准确定位肿瘤并在三维上定义肿瘤形态的充分的重建方法具有挑战性。在本文中,我们提出了一种新颖的高斯加权拉普拉斯先验(GWLP)正则化方法。它认为器官内任意两个体素之间的生物发光能量的方差与其高斯距离具有非线性反比关系,以解决BLT重建中过度平滑的肿瘤形态。通过各种数值模拟和体内原位神经胶质瘤小鼠模型实验,我们将GWLP与传统的Tikhonov和Laplace正则化方法进行了比较。将全头冷冻切片标本的体内磁共振成像和离体绿色荧光蛋白图像以及苏木精-伊红染色的图像用作金标准。结果表明,GWLP在肿瘤定位和肿瘤形态保存方面达到了最高的准确性。据我们所知,这是第一项实现原位神经胶质瘤如此精确的BLT形态学重建的研究,而没有使用任何其他结构成像方式的任何分段肿瘤结构作为重建指导。这使BLT更适合原位神经胶质瘤小鼠模型的体内成像。

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