Cellular effects of acute direct current stimulation: somatic and synaptic terminal effects
Tóm tắt
The diversity of cellular targets of direct current stimulation (DCS), including somas, dendrites and axon terminals, determine the modulation of synaptic efficacy. Axon terminals of cortical pyramidal neurons are two–three times more susceptible to polarization than somas. DCS in humans results in current flow dominantly parallel to the cortical surface, which in animal models of cortical stimulation results in synaptic pathway‐specific modulation of neuronal excitability. These results suggest that somatic polarization together with axon terminal polarization may be important for synaptic pathway‐specific modulation of DCS, which underlies modulation of neuronal excitability during transcranial DCS.
Từ khóa
Tài liệu tham khảo
Arlotti M, 2012, Axon terminal polarization induced by weak uniform DC electric fields: a modeling study, Conf Proc IEEE Eng Med Biol Soc, 2012, 4575
Aroniadou VA, 1993, The patterns and synaptic properties of horizontal intracortical connections in the rat motor cortex, J Neurophysiol, 70, 1553, 10.1152/jn.1993.70.4.1553
Bikson M, 2012, The “quasi‐uniform” assumption in animal and computational models of non‐invasive electrical stimulation, Brain Stimul
Bikson M, 2012, Transcranial Brain Stimulation, 456
Hause L, 1975, A Mathematical Model for Transmembrane Potentials Secondary to Extracellular Fields in Electroanaesthesia: Biomedical and Biophysical Studies
Hess G, 1996, Conditions for the induction of long‐term potentiation in layer II/III horizontal connections of the rat motor cortex, J Neurophysiol, 75, 1765, 10.1152/jn.1996.75.5.1765
Hess G, 1994, Long‐term potentiation of horizontal connections provides a mechanism to reorganize cortical motor maps, J Neurophysiol, 71, 2543, 10.1152/jn.1994.71.6.2543
Miranda PC, 2007, The role of tissue heterogeneity in neural stimulation by applied electric fields, Conf Proc IEEE Eng Med Biol Soc, 2007, 1715
Salvador R, 2010, Modeling the electric field induced in a high resolution realistic head model during transcranial current stimulation, Conf Proc IEEE Eng Med Biol Soc, 2010, 2073