Department of Biomedical Engineering, University of Minnesota, Minneapolis, USA.
Danish Research Centre for Magnetic Resonance, Centre for Functional and Diagnostic Imaging and Research, Copenhagen University Hospital - Amager and Hvidovre, Copenhagen, Denmark.
Neuroimage. 2023 Oct 1;279:120343. doi: 10.1016/j.neuroimage.2023.120343. Epub 2023 Aug 22.
Non-human primates (NHPs) have become key for translational research in noninvasive brain stimulation (NIBS). However, in order to create comparable stimulation conditions for humans it is vital to study the accuracy of current modeling practices across species. Numerical models to simulate electric fields are an important tool for experimental planning in NHPs and translation to human studies. It is thus essential whether and to what extent the anatomical details of NHP models agree with current modeling practices when calculating NIBS electric fields. Here, we create highly accurate head models of two non-human primates (NHP) MR data. We evaluate how muscle tissue and head field of view (depending on MRI parameters) affect simulation results in transcranial electric and magnetic stimulation (TES and TMS). Our findings indicate that the inclusion of anisotropic muscle can affect TES electric field strength up to 22% while TMS is largely unaffected. Additionally, comparing a full head model to a cropped head model illustrates the impact of head field of view on electric fields for both TES and TMS. We find opposing effects between TES and TMS with an increase up to 24.8% for TES and a decrease up to 24.6% for TMS for the cropped head model compared to the full head model. Our results provide important insights into the level of anatomical detail needed for NHP head models and can inform future translational efforts for NIBS studies.
非人类灵长类动物(NHPs)已成为非侵入性脑刺激(NIBS)转化研究的关键。然而,为了为人类创造可比较的刺激条件,研究当前跨物种建模实践的准确性至关重要。数值模型可用于模拟电场,是 NHP 实验规划和向人类研究转化的重要工具。因此,当计算 NIBS 电场时,NHP 模型的解剖细节是否以及在何种程度上与当前的建模实践一致,这一点非常重要。在这里,我们根据两只非人类灵长类动物(NHP)的磁共振(MR)数据创建了高度精确的头部模型。我们评估了肌肉组织和头部视野(取决于 MRI 参数)如何影响经颅电刺激(TES)和磁刺激(TMS)的模拟结果。我们的研究结果表明,包含各向异性肌肉会影响 TES 电场强度,最高可达 22%,而 TMS 则基本不受影响。此外,与全头模型相比,对头模型进行裁剪可说明头部视野对 TES 和 TMS 电场的影响。我们发现 TES 和 TMS 之间存在相反的影响,与全头模型相比,裁剪后的头部模型的 TES 电场强度增加了 24.8%,TMS 电场强度下降了 24.6%。我们的研究结果为 NHP 头部模型所需的解剖细节水平提供了重要的见解,并为未来的 NIBS 研究转化工作提供了信息。