Covelo Joana, Cortada Martina, Vinci Gianni V, Mattia Maurizio, Sanchez-Vives Maria V
Institut d'Investigacions Biomèdiques August Pi i Sunyer (IDIBAPS), Barcelona, 08036, Spain.
Facultat de Medicina i Ciències de la Salut, Universitat de Barcelona (UB), Barcelona, 08036, Spain.
Adv Sci (Weinh). 2025 Aug;12(32):e14602. doi: 10.1002/advs.202414602. Epub 2025 Jun 18.
Understanding how brain stimulation interacts with the brain's internal dynamics is crucial for developing effective neuromodulation protocols. Here we explore the effects of exogenous alternating current (AC) fields across various amplitudes and frequencies on cortical slices expressing spontaneous slow oscillations. Cortical network entrainment occurs within an Arnold tongue-like region centered at the endogenous frequency. However, slightly detuned periodic stimulation of higher frequency leads to a desynchronized regime, revealing a novel approach for disrupting pathological synchronicity. The introduction of an additional direct current (DC) offset expands the modulatory ranges, facilitating the achievement of either entrainment or desynchronization, depending on the DC offset's polarity. The experimental observations are quantitatively reproduced by a computational model of spiking neurons, suggesting that the interaction between nonlinear oscillators can predict the network's response to AC fields. Besides an improved understanding of cortical dynamics and its interaction with exogenous electric fields, a robust protocol with potential clinical applications in pathological conditions is presented.
了解脑刺激如何与大脑的内部动力学相互作用对于开发有效的神经调节方案至关重要。在这里,我们探讨了不同幅度和频率的外源交流电(AC)场对表达自发慢振荡的皮质切片的影响。皮质网络夹带发生在以内源性频率为中心的类似阿诺德舌的区域内。然而,对较高频率进行轻微失谐的周期性刺激会导致去同步状态,揭示了一种破坏病理性同步的新方法。引入额外的直流(DC)偏移会扩大调节范围,根据DC偏移的极性,有助于实现夹带或去同步。尖峰神经元的计算模型定量地再现了实验观察结果,表明非线性振荡器之间的相互作用可以预测网络对交流场的反应。除了更好地理解皮质动力学及其与外源电场的相互作用外,还提出了一种在病理状况下具有潜在临床应用价值的稳健方案。