Real-Time Tractography-Assisted Neuronavigation for Transcranial Magnetic Stimulation.

IF 3.5 2区 医学 Q1 NEUROIMAGING Human Brain Mapping Pub Date : 2025-01-01 DOI:10.1002/hbm.70122
Dogu Baran Aydogan, Victor H Souza, Renan H Matsuda, Pantelis Lioumis, Risto J Ilmoniemi
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Abstract

State-of-the-art navigated transcranial magnetic stimulation (nTMS) systems can display the TMS coil position relative to the structural magnetic resonance image (MRI) of the subject's brain and calculate the induced electric field. However, the local effect of TMS propagates via the white-matter network to different areas of the brain, and currently there is no commercial or research neuronavigation system that can highlight in real time the brain's structural connections during TMS. This lack of real-time visualization may overlook critical inter-individual differences in brain connectivity and does not provide the opportunity to target brain networks. In contrast, real-time tractography enables on-the-fly parameter tuning and detailed exploration of connections, which is computationally inefficient and limited with offline methods. To target structural brain connections, particularly in network-based treatments like major depressive disorder, a real-time tractography-based neuronavigation solution is needed to account for each individual's unique brain connectivity. The objective of this work is to develop a real-time tractography-assisted TMS neuronavigation system and investigate its feasibility. We propose a modular framework that seamlessly integrates offline (preparatory) analysis of diffusion MRI data with online (real-time) probabilistic tractography using the parallel transport approach. For tractography and neuronavigation, we combine our open source software Trekker and InVesalius, respectively. We evaluate our system using synthetic data and MRI scans of four healthy volunteers obtained using a multi-shell high-angular resolution diffusion imaging protocol. The feasibility of our online approach is assessed by studying four major TMS targets via comparing streamline count and overlap against offline tractography results based on filtering of one hundred million streamlines. Our development of a real-time tractography-assisted TMS neuronavigation system showcases advanced tractography techniques, with interactive parameter tuning and real-time visualization of thousands of streamlines via an innovative uncertainty visualization method. Our analysis reveals considerable variability among subjects and TMS targets in the streamline count, for example, while 15,000 streamlines were observed for the TMS target on the visual cortex (V1) of subject #4, in the case of subject #3's V1, no streamlines were obtained. Overlap analysis against offline tractograms demonstrated that real-time tractography can quickly cover a substantial part of the target areas' connectivity, often surpassing the coverage of offline approaches within seconds. For instance, significant portions of Broca's area and the primary motor cortex were effectively visualized after generating tens of thousands of streamlines, highlighting the system's efficiency and feasibility in capturing brain connectivity in real-time. Overall, our work shows that real-time tractography-assisted TMS neuronavigation is feasible. With our system, it is possible to target specific brain regions based on their structural connectivity, and to aim for the fiber tracts that make up the brain's networks. Real-time tractography provides new opportunities for TMS targeting through novel visualization techniques without compromising structural connectivity estimates when compared to the offline approach.

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经颅磁刺激的实时神经束图辅助神经导航。
最先进的导航经颅磁刺激(nTMS)系统可以显示TMS线圈相对于受试者大脑结构磁共振图像(MRI)的位置,并计算感应电场。然而,经颅磁刺激的局部效应通过白质网络传播到大脑的不同区域,目前还没有商业或研究中的神经导航系统可以实时显示经颅磁刺激期间大脑的结构连接。这种实时可视化的缺乏可能会忽略大脑连接中关键的个体间差异,也无法提供针对大脑网络的机会。相比之下,实时轨迹成像可以实时调整参数并详细探索连接,这在计算上效率低下,并且受到离线方法的限制。为了瞄准大脑结构连接,特别是在重度抑郁症等基于网络的治疗中,需要一种基于神经束图的实时神经导航解决方案来解释每个人独特的大脑连接。本研究的目的是开发一种实时神经束图辅助的经颅磁刺激神经导航系统,并探讨其可行性。我们提出了一个模块化框架,该框架使用并行传输方法将扩散MRI数据的离线(准备)分析与在线(实时)概率示踪术无缝集成。对于牵引图和神经导航,我们分别结合了我们的开源软件Trekker和InVesalius。我们使用合成数据和使用多壳高角分辨率扩散成像协议获得的四名健康志愿者的MRI扫描来评估我们的系统。通过将流线计数和重叠与基于1亿流线滤波的离线牵引成像结果进行比较,研究了4个主要TMS目标,评估了我们在线方法的可行性。我们开发的实时神经束成像辅助TMS神经导航系统展示了先进的神经束成像技术,通过创新的不确定性可视化方法,具有交互式参数调整和数千条流线的实时可视化。我们的分析显示,受试者和TMS靶点在流线计数上存在相当大的差异,例如,受试者4的TMS靶点在视觉皮层(V1)上观察到15000条流线,而受试者3的V1上没有观察到流线。对离线牵引图的重叠分析表明,实时牵引图可以快速覆盖大部分目标区域的连通性,通常在几秒钟内超过离线方法的覆盖范围。例如,在生成数万条流线后,布罗卡区和初级运动皮层的重要部分被有效地可视化,突出了该系统在实时捕获大脑连接方面的效率和可行性。总之,我们的工作表明,实时神经束图辅助TMS神经导航是可行的。有了我们的系统,就有可能根据结构连接来定位特定的大脑区域,并瞄准构成大脑网络的纤维束。与离线方法相比,实时束迹成像通过新颖的可视化技术为TMS靶向提供了新的机会,而不会影响结构连接估计。
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来源期刊
Human Brain Mapping
Human Brain Mapping 医学-核医学
CiteScore
8.30
自引率
6.20%
发文量
401
审稿时长
3-6 weeks
期刊介绍: Human Brain Mapping publishes peer-reviewed basic, clinical, technical, and theoretical research in the interdisciplinary and rapidly expanding field of human brain mapping. The journal features research derived from non-invasive brain imaging modalities used to explore the spatial and temporal organization of the neural systems supporting human behavior. Imaging modalities of interest include positron emission tomography, event-related potentials, electro-and magnetoencephalography, magnetic resonance imaging, and single-photon emission tomography. Brain mapping research in both normal and clinical populations is encouraged. Article formats include Research Articles, Review Articles, Clinical Case Studies, and Technique, as well as Technological Developments, Theoretical Articles, and Synthetic Reviews. Technical advances, such as novel brain imaging methods, analyses for detecting or localizing neural activity, synergistic uses of multiple imaging modalities, and strategies for the design of behavioral paradigms and neural-systems modeling are of particular interest. The journal endorses the propagation of methodological standards and encourages database development in the field of human brain mapping.
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