Department of Neurology and Neurosurgery, Montreal Neurological Institute, McGill University, Montreal, Quebec, Canada.
PLoS Biol. 2023 Jan 30;21(1):e3001973. doi: 10.1371/journal.pbio.3001973. eCollection 2023 Jan.
Transcranial electrical stimulation (tES) is one of the oldest and yet least understood forms of brain stimulation. The idea that a weak electrical stimulus, applied outside the head, can meaningfully affect neural activity is often regarded as mysterious. Here, we argue that the direct effects of tES are not so mysterious: Extensive data from a wide range of model systems shows it has appreciable effects on the activity of individual neurons. Instead, the real mysteries are how tES interacts with the brain's own activity and how these dynamics can be controlled to produce desirable therapeutic effects. These are challenging problems, akin to repairing a complex machine while it is running, but they are not unique to tES or even neuroscience. We suggest that models of coupled oscillators, a common tool for studying interactions in other fields, may provide valuable insights. By combining these tools with our growing, interdisciplinary knowledge of brain dynamics, we are now in a good position to make progress in this area and meet the high demand for effective neuromodulation in neuroscience and psychiatry.
经颅电刺激(tES)是最古老但最不被理解的脑刺激形式之一。将微弱的电刺激施加在头部之外,就能对神经活动产生有意义的影响,这一想法常常被认为是神秘的。在这里,我们认为 tES 的直接作用并不那么神秘:来自广泛模型系统的大量数据表明,它对单个神经元的活动有明显的影响。相反,真正的谜团在于 tES 如何与大脑自身的活动相互作用,以及如何控制这些动态以产生理想的治疗效果。这些都是具有挑战性的问题,类似于在机器运行时进行修复,但它们不仅限于 tES 甚至神经科学。我们建议,耦合振荡器模型(一种用于研究其他领域相互作用的常用工具)可能会提供有价值的见解。通过将这些工具与我们日益增长的、跨学科的大脑动力学知识相结合,我们现在处于很好的位置,可以在这一领域取得进展,并满足神经科学和精神病学对有效神经调节的高需求。