Aberra, A. S., Peterchev, A. V., & Grill, W. M. (2018). Biophysically realistic neuron models for simulation of cortical stimulation. Journal of Neural Engineering,15(6), Article 066023.
Article PubMed PubMed Central Google Scholar
Aberra, A. S., Wang, B. S., Grill, W. M., & Peterchev, A. V. (2020). Simulation of transcranial magnetic stimulation in head model with morphologically-realistic cortical neurons. Brain Stimulation, 13(1), 175–189.
Aberra, A. S., Lopez, A., Grill, W. M., & Peterchev, A. V. (2023). Rapid estimation of cortical neuron activation thresholds by transcranial magnetic stimulation using convolutional neural networks. Neuroimage,275, Article 120184.
Aberra, A. S., Wang, R., Grill, W. M., & Peterchev, A. V. (2024). Multi-scale model of axonal and dendritic polarization by transcranial direct current stimulation in realistic head geometry. Brain Stimulation,16(6), 1176–1791.
Ahn, S., Mellin, J. M., Alagapan, S., Alexander, M. L., Gilmore, J. H., & Fröhlich, F. (2019). Targeting reduced neural oscillations in patients with schizophrenia by transcranial alternating current stimulation. NeuroImage,186, 126–136.
Alekseichuk, I., Wischnewski, M., & Opitz, A. (2022). A minimum effective dose for (transcranial) alternating current stimulation. Brain Stimulation, 15(5), 1221–1222.
Article PubMed PubMed Central Google Scholar
Alexander, M. L., Alagapan, S., Lugo, C. E., Mellin, J. M., Lustenberger, C., Rubinow, D. R., & Fröhlich, F. (2019). Double-blind, randomized pilot clinical trial targeting alpha oscillations with transcranial alternating current stimulation (tACS) for the treatment of major depressive disorder (MDD). Translational Psychiatry,9, Article 106.
Article PubMed PubMed Central Google Scholar
Ali, M. M., Sellers, K. K., & Frohlich, F. (2013). Transcranial alternating current stimulation modulates large-scale cortical network activity by network resonance. Journal of Neuroscience,33(27), 11262–11275.
Article CAS PubMed Google Scholar
Anastassiou, C. A., Perin, R., Markram, H., & Koch, C. (2011). Ephaptic coupling of cortical neurons. Nature Neuroscience,14(2), 217–223.
Article CAS PubMed Google Scholar
Antal, A., & Paulus, W. (2013). Transcranial alternating current stimulation (tACS). Frontiers in Human Neuroscience,7, Article 317.
Article PubMed PubMed Central Google Scholar
Antal, A., Alekseichuk, I., Bikson, M., et al. (2017). Low intensity transcranial electric stimulation: Safety, ethical, legal regulatory and application guidelines. Clinical Neurophysiology,128(9), 1774–1809.
Article CAS PubMed PubMed Central Google Scholar
Antonenko, D., Thielscher, A., Saturnino, G. B., Aydin, S., Ittermann, B., Grittner, U., & Flöel, A. (2019). Towards precise brain stimulation: Is electric field simulation related to neuromodulation? Brain Stimulation, 12(5), 1159–1168.
Aspart, F., Remme, M. W. H., & Obermayer, K. (2018). Differential polarization of cortical pyramidal neuron dendrites through weak extracellular fields. PLoS Computational Biology,14(5), Article e1006124.
Article PubMed PubMed Central Google Scholar
Beliaeva, V., & Polania, R. (2020). Can low-intensity tACS genuinely entrain neural activity in vivo? Brain Stimulation, 13(6), 1796–1799.
Beliaeva, V., Savvateev, I., Zerbi, V., & Polania, R. (2021). Toward integrative approaches to study the causal role of neural oscillations via transcranial electrical stimulation. Nature Communications,12(1), Article 2243.
Article CAS PubMed PubMed Central Google Scholar
Benussi, A., Cantoni, V., Grassi, M., et al. (2022). Increasing brain gamma activity improves episodic memory and restores cholinergic dysfunction in Alzheimer’s disease. Annals of Neurology,92(2), 322–334.
Article CAS PubMed PubMed Central Google Scholar
Berens, P. (2009). Circstat: A MATLAB toolbox for circular statistics. Journal of Statistical Software,31(10), 1–21.
Bikson, M., Dmochowski, J., & Rahman, A. (2013). The quasi-uniform assumption in animal and computational models of non-invasive electrical stimulation. Brain Stimulation, 6(4), 704–705.
Bossetti, C. A., Birdno, M. J., & Grill, W. M. (2008). Analysis of the quasi-static approximation for calculating potentials generated by neural stimulation. Journal of Neural Engineering,5(1), 44–53.
Chan, C. Y., & Nicholson, C. (1986). Modulation by applied electric fields of Purkinje and stellate cell activity in the isolated turtle cerebellum. The Journal of Physiology,371, 89–114.
Article CAS PubMed PubMed Central Google Scholar
Chung, H., Im, C., Seo, H., & Jun, S. C. (2022). Key factors in the cortical response to transcranial electrical stimulations-A multi-scale modeling study. Computers in Biology and Medicine,144, Article 105328.
Cignoni, P., Callieri, M., Corsini, M., Dellepiane, M., Ganovelli, F., & Ranzuglia, G. (2008). MeshLab: An open-source mesh processing tool. 6th Eurographics Italian Chapter Conference, 1, 129–136.
Deans, J. K., Powell, A. D., & Jefferys, J. G. R. (2007). Sensitivity of coherent oscillations in rat hippocampus to AC electric fields. The Journal of Physiology,583(2), 555–565.
Article CAS PubMed PubMed Central Google Scholar
Destexhe, A., Mainen, Z. F., & Sejnowski, T. J. (1988). Kinetic models of synaptic transmission: Methods in neuronal modelling, from ions to networks (Vol. 2, pp. 1–25). MIT Press.
Destrieux, C., Fischl, B., Dale, A., & Halgren, E. (2010). Automatic parcellation of human cortical gyri and sulci using standard anatomical nomenclature. NeuroImage,53(1), 1–15.
Frohlich, F., & Townsend, L. (2021). Closed-loop transcranial alternating current stimulation: Towards personalized non-invasive brain stimulation for the treatment of psychiatric illnesses. Current Behavioral Neuroscience Reports,8(2), 51–57.
Fröhlich, F., & McCormick, D. A. (2010). Endogenous electric fields may guide neocortical network activity. Neuron,67(1), 129–143.
Article PubMed PubMed Central Google Scholar
Gabriel, G., Al Harrach, M., Yochum, M., Wendling, F., Bikson, M., Modolo, J., & Nikolayev, D. (2025). Frequency-dependent phase entrainment of cortical cell types during tACS: Computational modeling evidence. Journal of Neural Engineering,22(1), Article 016028.
Goodwin, B. D., & Butson, C. R. (2015). Subject-specific multiscale modeling to investigate effects of transcranial magnetic stimulation. Neuromodulation,18(8), 694–703.
Guerra, A., Colella, D., Giangrosso, M., et al. (2022). Driving motor cortex oscillations modulates bradykinesia in Parkinson’s disease. Brain,145(1), 224–236.
He, Y. C., Liu, S., Chen, L., Ke, Y. F., & Ming, D. (2023). Neurophysiological mechanisms of transcranial alternating current stimulation. Frontiers in Neuroscience,17, Article 1091925.
Article PubMed PubMed Central Google Scholar
Herrmann, C. S., Rach, S., Neuling, T., & Strüber, D. (2013). Transcranial alternating current stimulation: A review of the underlying mechanisms and modulation of cognitive processes. Frontiers in Human Neuroscience,7, Article 279.
Article PubMed PubMed Central Google Scholar
Hines, M. L., & Carnevale, N. T. (1997). The neuron simulation environment. Neural Computation,9(6), 1179–1209.
Article CAS PubMed Google Scholar
Huang, Y., Datta, A., Bikson, M., & Parra, L. C. (2019). Realistic volumetric-approach to simulate transcranial electric stimulation-ROAS-a fully automated open-source pipeline. Journal of Neural Engineering,16(5), Article 056006.
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