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1
Visual activation of auditory cortex reflects maladaptive plasticity in cochlear implant users.听觉皮层的视觉激活反映了人工耳蜗使用者适应性不良的可塑性。
Brain. 2012 Feb;135(Pt 2):555-68. doi: 10.1093/brain/awr329. Epub 2012 Jan 9.
2
Motion-related artefacts in EEG predict neuronally plausible patterns of activation in fMRI data.脑电中的运动相关伪影可预测 fMRI 数据中神经上似然的激活模式。
Neuroimage. 2012 Jan 2;59(1):261-70. doi: 10.1016/j.neuroimage.2011.06.094. Epub 2011 Jul 8.
3
With or without spikes: localization of focal epileptic activity by simultaneous electroencephalography and functional magnetic resonance imaging.有或无棘波:同步脑电图和功能磁共振成像定位局灶性癫痫活动。
Brain. 2011 Oct;134(Pt 10):2867-86. doi: 10.1093/brain/awr156. Epub 2011 Jul 12.
4
Reducing the gradient artefact in simultaneous EEG-fMRI by adjusting the subject's axial position.通过调整被试的轴向位置来减少 EEG-fMRI 中的梯度伪影。
Neuroimage. 2011 Feb 1;54(3):1942-50. doi: 10.1016/j.neuroimage.2010.09.079. Epub 2010 Oct 13.
5
Physical modeling of pulse artefact sources in simultaneous EEG/fMRI.在同时进行的 EEG/fMRI 中对脉搏伪影源进行物理建模。
Hum Brain Mapp. 2010 Apr;31(4):604-20. doi: 10.1002/hbm.20891.
6
Understanding gradient artefacts in simultaneous EEG/fMRI.理解同步脑电图/功能磁共振成像中的梯度伪影。
Neuroimage. 2009 Jun;46(2):459-71. doi: 10.1016/j.neuroimage.2009.01.029.
7
Exploring the feasibility of simultaneous electroencephalography/functional magnetic resonance imaging at 7 T.
Magn Reson Imaging. 2008 Sep;26(7):968-77. doi: 10.1016/j.mri.2008.02.014. Epub 2008 May 27.
8
Endogenous brain oscillations and related networks detected by surface EEG-combined fMRI.通过表面脑电图联合功能磁共振成像检测到的内源性脑振荡及相关网络。
Hum Brain Mapp. 2008 Jul;29(7):762-9. doi: 10.1002/hbm.20600.
9
Improved artifact correction for combined electroencephalography/functional MRI by means of synchronization and use of vectorcardiogram recordings.通过同步和使用心电图记录改进脑电图/功能磁共振成像联合中的伪影校正。
J Magn Reson Imaging. 2008 Mar;27(3):607-16. doi: 10.1002/jmri.21277.
10
Simultaneous EEG source localisation and artifact rejection during concurrent fMRI by means of spatial filtering.通过空间滤波在同步功能磁共振成像(fMRI)期间进行脑电图(EEG)源定位与伪迹去除
Neuroimage. 2008 Apr 15;40(3):1090-104. doi: 10.1016/j.neuroimage.2007.12.030. Epub 2007 Dec 27.

在同步功能磁共振成像(fMRI)过程中获取高质量脑电图(EEG)数据的当前最佳实践。

Best current practice for obtaining high quality EEG data during simultaneous FMRI.

作者信息

Mullinger Karen J, Castellone Pierluigi, Bowtell Richard

机构信息

Sir Peter Mansfield Magnetic Resonance Centre, School of Physics and Astronomy, University of Nottingham.

出版信息

J Vis Exp. 2013 Jun 3(76):50283. doi: 10.3791/50283.

DOI:10.3791/50283
PMID:23770804
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3725697/
Abstract

Simultaneous EEG-fMRI allows the excellent temporal resolution of EEG to be combined with the high spatial accuracy of fMRI. The data from these two modalities can be combined in a number of ways, but all rely on the acquisition of high quality EEG and fMRI data. EEG data acquired during simultaneous fMRI are affected by several artifacts, including the gradient artefact (due to the changing magnetic field gradients required for fMRI), the pulse artefact (linked to the cardiac cycle) and movement artifacts (resulting from movements in the strong magnetic field of the scanner, and muscle activity). Post-processing methods for successfully correcting the gradient and pulse artifacts require a number of criteria to be satisfied during data acquisition. Minimizing head motion during EEG-fMRI is also imperative for limiting the generation of artifacts. Interactions between the radio frequency (RF) pulses required for MRI and the EEG hardware may occur and can cause heating. This is only a significant risk if safety guidelines are not satisfied. Hardware design and set-up, as well as careful selection of which MR sequences are run with the EEG hardware present must therefore be considered. The above issues highlight the importance of the choice of the experimental protocol employed when performing a simultaneous EEG-fMRI experiment. Based on previous research we describe an optimal experimental set-up. This provides high quality EEG data during simultaneous fMRI when using commercial EEG and fMRI systems, with safety risks to the subject minimized. We demonstrate this set-up in an EEG-fMRI experiment using a simple visual stimulus. However, much more complex stimuli can be used. Here we show the EEG-fMRI set-up using a Brain Products GmbH (Gilching, Germany) MRplus, 32 channel EEG system in conjunction with a Philips Achieva (Best, Netherlands) 3T MR scanner, although many of the techniques are transferable to other systems.

摘要

同步脑电图-功能磁共振成像(EEG-fMRI)可将脑电图出色的时间分辨率与功能磁共振成像的高空间精度相结合。这两种模态的数据可以通过多种方式进行组合,但都依赖于高质量脑电图和功能磁共振成像数据的采集。在同步功能磁共振成像期间采集的脑电图数据会受到多种伪影的影响,包括梯度伪影(由于功能磁共振成像所需的变化磁场梯度)、脉冲伪影(与心动周期相关)和运动伪影(由扫描仪强磁场中的运动以及肌肉活动引起)。成功校正梯度和脉冲伪影的后处理方法要求在数据采集期间满足多个标准。在脑电图-功能磁共振成像期间尽量减少头部运动对于限制伪影的产生也至关重要。磁共振成像所需的射频(RF)脉冲与脑电图硬件之间可能会发生相互作用并导致发热。只有在不满足安全准则时,这才是一个重大风险。因此,必须考虑硬件设计和设置,以及在有脑电图硬件的情况下仔细选择运行哪些磁共振序列。上述问题凸显了在进行同步脑电图-功能磁共振成像实验时所采用实验方案选择的重要性。基于先前的研究,我们描述了一种最佳实验设置。当使用商业脑电图和功能磁共振成像系统时,这在同步功能磁共振成像期间可提供高质量的脑电图数据,并将受试者的安全风险降至最低。我们在一个使用简单视觉刺激的脑电图-功能磁共振成像实验中展示了这种设置。然而,可以使用更为复杂的刺激。尽管许多技术可转移到其他系统,但在这里我们展示了使用德国吉尔兴的Brain Products GmbH公司的MRplus 32通道脑电图系统与荷兰贝斯特的飞利浦Achieva 3T磁共振扫描仪相结合的脑电图-功能磁共振成像设置。