弥散张量成像和神经纤维束造影在脑外科中的应用

A. Seddighi, A. Seddighi, Mahsa Ghadirian, A. Zali, D. Ommi, Seyed Mahmoud Tabatabaei Far, Hamidreza Azizi Faresani, Nooshin Masoudian
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摘要

背景与目的:利用功能磁共振成像(fMRI)和核磁共振成像(MRI)检测大脑激活的方法提供了一种测量解剖连接的方法,这种连接使专门从事不同脑功能的神经元之间能够闪电般快速通信。扩散张量成像(DTI)可以测量轴突纤维束排列的方向。除了绘制白质纤维束外,这些方法还可以使我们检测和表征疾病中的白质紊乱。这篇叙述性综述的目的是概述目前关于DTI的知识,DTI是一种突出的流行MRI技术,它为研究和实践领域的人类大脑的全面、无创、功能解剖测绘提供了一种有计划的工具。本文综述了近年来DTI技术在脑外科中的特异性和应用进展。方法和材料/患者:通过二维和三维白质束的可视化和表征来绘制白质束的结构,建设性地描绘大脑的线路,这一意义使我们能够深入了解大脑不同区域是如何连接的,以及疾病是如何影响白质并引起神经问题的。我们注意到,虽然DTI提出了一个研究和可视化白质的有力工具,但它存在固有的人为因素和局限性。此外,对DTI信号的来源、白质的独特信息和神经元束的三维可视化也提出了一些资料。结果:本文重点研究了DTI模态及其计算技术,并探讨了这方面的重要考虑因素。此外,检查正常和病变大脑(如多发性硬化症、中风、衰老、痴呆、精神分裂症等)的白质结构和完整性已被提出作为束状图的临床应用。结论:利用弥散张量(DT)成像技术的进步,我们可以在很大程度上绘制正常脑白质束图(WMT)。这些技术对外科手术特别是脑肿瘤的手术决策有重要影响。此外,在DTI的帮助下,可以对每个科目进行判断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Benefits and Implementation of Diffusion Tensor Imaging and Neural Fiber Tractography in Brain Surgery
Background and Aim: The methods to detect brain activation with functional MRI (fMRI), and MRI provide a way to measure the anatomical connections which enable lightning-fast communication among neurons that specialize in different kinds of brain functions. Diffusion tensor imaging (DTI) can measure the direction of bundles of the axonal fibers which are all aligned. Besides mapping white matter fiber tracts, these methods can enable us to detect and characterize white matter disorders in diseases. The objective of this narrative review is to overview current knowledge concerning DTI as one of the prominent popular MRI techniques that provide a planned tool for comprehensive, noninvasive, functional anatomy mapping of the human brain in both research and practical field. This review summarizes the DTI development in recent years concerning the specificity and utility of this technique in brain surgery. Methods and Materials/Patients: The significance of mapping the structure of white matter tracts, constructively the brain’s wiring by visualization and characterization of white matter fasciculi in two and three dimensions enables us to profound how different brain regions are connected and how diseases affect white matter and cause neurological problems. And we noted that while DTI proposes a potent tool to study and visualize white matter, it suffers from inherent artifacts and limitations. Additionally, some materials about the origin of the DTI signal and unique information on white matter and 3D visualization of neuronal tracts have been raised. Results: This article focuses on DTI modality and its computational techniques, and investigates significant considerations in this regard. Moreover, an inspection of the white matter structure and integrity of normal and diseased brains (e.g. multiple sclerosis, stroke, aging, dementia, schizophrenia, etc.) have been raised as a clinical application of tractography. Conclusion: The utilization of advances in diffusion-tensor (DT) imaging techniques considerably enables us to map the white matter tractography (WMT) in the normal brain. These techniques impress the operative decision in a surgical operation, especially concerning cerebral neoplasms. Also, it is possible to judge with the assistance of DTI in each subject.
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