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通过弥散张量成像和神经病变程度对人视神经进行可视化。

Visualization of human optic nerve by diffusion tensor mapping and degree of neuropathy.

机构信息

Department of Condensed Matter Physics, University of Bialystok, Bialystok, Poland.

Department of Ophthalmology, Medical University of Bialystok, Bialystok, Poland.

出版信息

PLoS One. 2022 Dec 12;17(12):e0278987. doi: 10.1371/journal.pone.0278987. eCollection 2022.

Abstract

Diffusion-weighted magnetic resonance imaging of the human optic nerve and tract is technically difficult because of its small size, the inherent strong signal generated by the surrounding fat and the cerebrospinal fluid, and due to eddy current-induced distortions and subject movement artifacts. The effects of the bone canal through which the optic nerve passes, and the proximity of blood vessels, muscles and tendons are generally unknown. Also, the limited technical capabilities of the scanners and the minimization of acquisition times result in poor quality diffusion-weighted images. It is challenging for current tractography methods to accurately track optic pathway fibers that correspond to known anatomy. Despite these technical limitations and low image resolution, here we show how to visualize the optic nerve and tract and quantify nerve atrophy. Our visualization method based on the analysis of the diffusion tensor shows marked differences between a healthy male subject and a male subject with progressive optic nerve neuropathy. These differences coincide with diffusion scalar metrics and are not visible on standard morphological images. A quantification of the degree of optic nerve atrophy in a systematic way is provided and it is tested on 9 subjects from the Human Connectome Project.

摘要

视神经和视路的弥散加权磁共振成像技术难度较大,因为视神经和视路体积小,周围的脂肪和脑脊液会产生固有强信号,而且还会受到涡流引起的变形和受试者运动伪影的影响。视神经通过的骨管以及血管、肌肉和肌腱的接近程度通常是未知的。此外,扫描仪的技术能力有限,采集时间尽量缩短,导致弥散加权图像质量较差。目前的追踪方法很难准确追踪与已知解剖结构相对应的视路纤维。尽管存在这些技术限制和低图像分辨率,但我们在此展示如何可视化视神经和视路并量化神经萎缩。我们基于弥散张量分析的可视化方法显示了健康男性和患有进行性视神经神经病的男性之间的明显差异。这些差异与弥散标量指标一致,在标准形态图像上不可见。我们以系统的方式对视神经萎缩的程度进行了量化,并在人类连接组计划的 9 名受试者上进行了测试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a19/9744320/969ce17ff63e/pone.0278987.g001.jpg

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