Mancuso M, Cruciani A, Sveva V, Casula E P, Brown K, Rothwell J C, Di Lazzaro V, Koch G, Rocchi L
Department of Human Neurosciences, University of Rome "Sapienza", Viale dell'Università 30, 00185 Rome, Italy.
Department of Medicine and Surgery, Unit of Neurology, Neurophysiology, Neurobiology, and Psychiatry, Università Campus Bio-Medico di Roma, Via Alvaro del Portillo, 21, 00128 Rome, Italy; Fondazione Policlinico Universitario Campus Bio-Medico, Via Alvaro del Portillo 200, 00128 Rome, Italy.
Neurosci Biobehav Rev. 2023 Dec;155:105434. doi: 10.1016/j.neubiorev.2023.105434. Epub 2023 Oct 26.
The transcranial evoked potential (TEP) is a powerful technique to investigate brain dynamics, but some methodological issues limit its interpretation. A possible contamination of the TEP by electroencephalographic (EEG) responses evoked by the somatosensory input generated by transcranial magnetic stimulation (TMS) has been postulated; nonetheless, a characterization of these responses is lacking. The aim of this work was to review current evidence about possible somatosensory evoked potentials (SEP) induced by sources of somatosensory input in the craniofacial region. Among these, only contraction of craniofacial muscle and stimulation of free cutaneous nerve endings may be able to induce EEG responses, but direct evidence is lacking due to experimental difficulties in isolating these inputs. Notably, EEG evoked activity in this context is represented by a N100/P200 complex, reflecting a saliency-related multimodal response, rather than specific activation of the primary somatosensory cortex. Strategies to minimize or remove these responses by EEG processing still yield uncertain results; therefore, data inspection is of paramount importance to judge a possible contamination of the TEP by multimodal potentials caused by somatosensory input.
经颅诱发电位(TEP)是研究脑动力学的一种强大技术,但一些方法学问题限制了对其的解读。有人推测经颅磁刺激(TMS)产生的体感输入所诱发的脑电图(EEG)反应可能会污染TEP;然而,目前尚缺乏对这些反应的特征描述。这项工作的目的是回顾有关颅面部区域体感输入源可能诱发的体感诱发电位(SEP)的现有证据。其中,只有颅面部肌肉收缩和游离皮肤神经末梢刺激可能能够诱发EEG反应,但由于分离这些输入存在实验困难,目前缺乏直接证据。值得注意的是,在此背景下,EEG诱发活动表现为N100/P200复合波,反映的是与显著性相关的多模态反应,而非初级体感皮层的特异性激活。通过EEG处理最小化或消除这些反应的策略仍然会产生不确定的结果;因此,数据检查对于判断体感输入引起的多模态电位是否可能污染TEP至关重要。