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How anatomical asymmetry of human auditory cortex can lead to a rightward bias in auditory evoked fields

机译:人类听觉皮层的解剖学不对称如何导致听觉诱发区域向右偏

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摘要

Auditory evoked fields and potentials, such as the N1 or the 40-Hz steady state response, are often stronger in the right compared to the left auditory cortex. Here we investigated whether a greater degree of cortical folding in left auditory cortex could result in increased MEG signal cancelation and a subsequent bias in MEG auditory signals toward the right hemisphere. Signal cancelation, due to non-uniformity of the orientations of underlying neural currents, affects MEG and EEG signals generated by any neuronal activity of reasonable spatial extent. We simulated MEG signals in patches of auditory cortex in seventeen subjects, and measured the relationships between underlying activity distribution, cortical non-uniformity, signal cancelation and resulting (fitted) dipole strength and position. Our results suggest that the cancelation of MEG signals from auditory cortex is asymmetric, due to underlying anatomy, and this asymmetry may result in a rightward bias in measurable dipole amplitudes. The effect was significant across all auditory areas tested, with the exception of planum temporale. Importantly, we also show how the rightward bias could be partially or completely offset by increased cortical area, and therefore increased cortical activity, on the left side. We suggest that auditory researchers are aware of the impact of cancelation and its resulting rightward bias in signal strength from auditory cortex. These findings are important for studies seeking functional hemispheric specialization in the auditory cortex with MEG as well as for integration of MEG with other imaging modalities.
机译:与左侧听觉皮层相比,右侧的听觉诱发场和电位(例如N1或40 Hz稳态响应)通常更强。在这里,我们研究了左侧听觉皮层中更大程度的皮质折叠是否会导致增加的MEG信号消除以及随后的MEG听觉信号向右半球的偏斜。由于潜在神经电流方向的不均匀,信号消除会影响由合理空间范围内的任何神经元活动产生的MEG和EEG信号。我们在十七名受试者的听觉皮层斑块中模拟了MEG信号,并测量了基础活动分布,皮层不均匀性,信号消除与产生的(拟合的)偶极子强度和位置之间的关系。我们的结果表明,由于潜在的解剖结构,来自听觉皮层的MEG信号的消除是不对称的,并且这种不对称性可能导致可测量的偶极振幅向右偏。除了颞颞叶外,该效果在所有测试的听觉区域均显着。重要的是,我们还显示了如何通过增加皮质区域(从而增加皮质活动)来部分或完全抵消向右的偏见。我们建议听觉研究者意识到消除的影响及其在听觉皮层信号强度中产生的右偏。这些发现对于寻求利用MEG在听觉皮层中功能性半球特化的研究以及对于将MEG与其他成像方式整合在一起非常重要。

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