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Weak electric fields of deep brain stimulation can entrain spiking in multi-compartment cortical neuron models

Sep 2026 · bioRxiv · 0 citations · 48 references
Biology

TL;DR

C cortical E-fields of DBS may directly influence activity of some cortical neurons, alongside the established indirect cortical effects mediated by subcortical targets and their networks, according to a new perspective on how DBS may influence cortical activity.

Abstract

Background Deep brain stimulation (DBS) is widely used to treat neurological disorders, but how it exerts its therapeutic effects remains an open question. Although DBS primarily acts through stimulated subcortical structures and their networks, recent studies have demonstrated that cortical electric field (E-field) strengths generated during DBS are comparable to, and can exceed, those shown to modulate neuronal activity with transcranial alternating current stimulation. We therefore investigated whether and how these weak DBS fields can directly modulate cortical spike timing. Methods We used multi-compartment computational models of five neuron types across all cortical layers and exposed them to E-fields modeled as DBS pulses. E-field amplitudes spanned the typical range of cortical E-field strengths during DBS, while frequency and orientation were varied. Entrainment was assessed using peri-stimulus time histograms and quantified by the phase locking value (PLV). Results Weak DBS fields modulated spike timing of some neurons by either increasing or decreasing the likelihood of firing immediately following the stimulation pulse. This modulation reflected entrainment to the stimulation, with the PLV increasing with E-field amplitude and frequency. The magnitude and direction of spike-timing modulation varied across neuron types and depended on the orientation of the field. Conclusion These findings suggest that cortical E-fields of DBS may directly influence activity of some cortical neurons, alongside the established indirect cortical effects mediated by subcortical targets and their networks. This provides a new perspective on how DBS may influence cortical activity and offers insights into its potential mechanisms of therapeutic and/or side effects. Highlights Multi-compartment models to study how DBS E-fields affect cortical neuron dynamics. E-fields of DBS can directly affect cortical neuron spike timing. Probability of firing increases or decreases following DBS pulses. Some pyramidal neurons can phase-lock to weak electric fields as low as 1 V/m. Weak fields of DBS may play a role in therapeutic and/or side effects. Graphical Abstract

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