Repetitive transcranial magnetic stimulation increases excitability of hippocampal CA1 pyramidal neurons. 2013

Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
School of Biomedical Engineering, Tianjin Medical University, Tianjin 300070, China. tantao_tijmu@126.com

Repetitive transcranial magnetic stimulation (rTMS) is able to induce alteration in cortical activity and excitability that outlast the period of stimulation, which is long-term depre-ssion (LTD) or long-term potentiation (LTP)-like. Accumulating evidence shows that Na(+), Ca(2+) and K(+) channels are important for the regulation of neuronal excitability. To investigate the possible mechanisms of rTMS on regulation of intrinsic excitability in hippocampal neurons, the male or female Sprague-Dawley rats aged 2-3 d or 7-8 d were treated with 14 or 7-d's low frequency (1 Hz) rTMS (400 stimuli/d), respectively. After that, the effects of rTMS on ion channels such as Na(+)-channel, A-type K(+)-channel and Ca(2+)-channel in rat hippocampal CA1 pyramidal neurons were performed by standard whole-cell patch-clamp technique. The results showed that the peak amplitude and maximal rise slope of evoked single action potential (AP) were significantly increased after 14-d's rTMS treatment. Meanwhile, the AP threshold was significantly more depolarized in neurons after 14-d's rTMS treatment than neurons in control group that without rTMS treatment. The spontaneous excitatory post-synaptic currents (sEPSCs) frequency and amplitude of CA1 pyramidal neurons in groups with rTMS treatment (both 7 d and 14 d) were obviously increased compared with the age-matched control group. Furthermore, we found that electrophysiological properties of Na(+)-channel were markedly changed after rTMS treatment, including negative-shifted activation and inactivation curves, as well as fasten recovery rate. After rTMS application, the IA amplitude of K(+)-channel was reduced; the activation and inactivation curves of K(+)-channel were significantly shifted to right. Time constant of recovery from inactivation was also more rapid. Moreover, rTMS induced an obvious increment in the maximal current peak amplitude of Ca(2+)-channel. At the same time, there was a significant rightward shift in the activation curve and inactivation curves of Ca(2+)-channel. These data suggest that rTMS can enhance the AP and sEPSCs of hippocampal CA1 neurons. Altered electrophysiological properties of Na(+)-channel, A-type K(+) channels and Ca(2+) channels contribute to the underling mechanisms of rTMS-induced up-regulation of neural excitability.

UI MeSH Term Description Entries
D008297 Male Males
D005260 Female Females
D000200 Action Potentials Abrupt changes in the membrane potential that sweep along the CELL MEMBRANE of excitable cells in response to excitation stimuli. Spike Potentials,Nerve Impulses,Action Potential,Impulse, Nerve,Impulses, Nerve,Nerve Impulse,Potential, Action,Potential, Spike,Potentials, Action,Potentials, Spike,Spike Potential
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D015220 Calcium Channels Voltage-dependent cell membrane glycoproteins selectively permeable to calcium ions. They are categorized as L-, T-, N-, P-, Q-, and R-types based on the activation and inactivation kinetics, ion specificity, and sensitivity to drugs and toxins. The L- and T-types are present throughout the cardiovascular and central nervous systems and the N-, P-, Q-, & R-types are located in neuronal tissue. Ion Channels, Calcium,Receptors, Calcium Channel Blocker,Voltage-Dependent Calcium Channel,Calcium Channel,Calcium Channel Antagonist Receptor,Calcium Channel Antagonist Receptors,Calcium Channel Blocker Receptor,Calcium Channel Blocker Receptors,Ion Channel, Calcium,Receptors, Calcium Channel Antagonist,VDCC,Voltage-Dependent Calcium Channels,Calcium Channel, Voltage-Dependent,Calcium Channels, Voltage-Dependent,Calcium Ion Channel,Calcium Ion Channels,Channel, Voltage-Dependent Calcium,Channels, Voltage-Dependent Calcium,Voltage Dependent Calcium Channel,Voltage Dependent Calcium Channels
D015221 Potassium Channels Cell membrane glycoproteins that are selectively permeable to potassium ions. At least eight major groups of K channels exist and they are made up of dozens of different subunits. Ion Channels, Potassium,Ion Channel, Potassium,Potassium Channel,Potassium Ion Channels,Channel, Potassium,Channel, Potassium Ion,Channels, Potassium,Channels, Potassium Ion,Potassium Ion Channel
D015222 Sodium Channels Ion channels that specifically allow the passage of SODIUM ions. A variety of specific sodium channel subtypes are involved in serving specialized functions such as neuronal signaling, CARDIAC MUSCLE contraction, and KIDNEY function. Ion Channels, Sodium,Ion Channel, Sodium,Sodium Channel,Sodium Ion Channels,Channel, Sodium,Channel, Sodium Ion,Channels, Sodium,Channels, Sodium Ion,Sodium Ion Channel
D017207 Rats, Sprague-Dawley A strain of albino rat used widely for experimental purposes because of its calmness and ease of handling. It was developed by the Sprague-Dawley Animal Company. Holtzman Rat,Rats, Holtzman,Sprague-Dawley Rat,Rats, Sprague Dawley,Holtzman Rats,Rat, Holtzman,Rat, Sprague-Dawley,Sprague Dawley Rat,Sprague Dawley Rats,Sprague-Dawley Rats
D050781 Transcranial Magnetic Stimulation A technique that involves the use of electrical coils on the head to generate a brief magnetic field which reaches the CEREBRAL CORTEX. It is coupled with ELECTROMYOGRAPHY response detection to assess cortical excitability by the threshold required to induce MOTOR EVOKED POTENTIALS. This method is also used for BRAIN MAPPING, to study NEUROPHYSIOLOGY, and as a substitute for ELECTROCONVULSIVE THERAPY for treating DEPRESSION. Induction of SEIZURES limits its clinical usage. Transcranial Magnetic Stimulation, Paired Pulse,Transcranial Magnetic Stimulation, Repetitive,Transcranial Magnetic Stimulation, Single Pulse,Magnetic Stimulation, Transcranial,Magnetic Stimulations, Transcranial,Stimulation, Transcranial Magnetic,Stimulations, Transcranial Magnetic,Transcranial Magnetic Stimulations
D051381 Rats The common name for the genus Rattus. Rattus,Rats, Laboratory,Rats, Norway,Rattus norvegicus,Laboratory Rat,Laboratory Rats,Norway Rat,Norway Rats,Rat,Rat, Laboratory,Rat, Norway,norvegicus, Rattus

Related Publications

Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
January 2006, Neuroscience,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
January 2012, Seishin shinkeigaku zasshi = Psychiatria et neurologia Japonica,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
April 1992, Synapse (New York, N.Y.),
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
February 2011, Psychiatry and clinical neurosciences,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
November 2014, Neuroscience,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
August 2010, Neuroscience letters,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
February 2013, Clinical neurophysiology : official journal of the International Federation of Clinical Neurophysiology,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
April 2024, The European journal of neuroscience,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
May 2015, Brain research,
Tao Tan, and Jiacun Xie, and Zhiqian Tong, and Tiaotiao Liu, and Xiaojia Chen, and Xin Tian
May 2000, Clinical neurophysiology : official journal of the International Federation of Clinical Neurophysiology,
Copied contents to your clipboard!