1,578
Views
8
CrossRef citations to date
0
Altmetric
Research Article

A method to induce human cortical long-term potentiation by acoustic stimulation

, , , , , , , , , , , & show all
Pages 1069-1076 | Received 07 Apr 2017, Accepted 15 May 2017, Published online: 07 Jun 2017

References

  • Takeuchi T, Duszkiewicz AJ, Morris RG. The synaptic plasticity and memory hypothesis: encoding, storage and persistence. Philos Trans R Soc Lond B Biol Sci. 2014;369:20130288.
  • Cakir A, Ecevit MC, Bal R, et al. Assessment of synaptic plasticity via long-term potentiation in young mice on the day after acoustic trauma: implications for tinnitus. Int Adv Otol. 2015;11:196–201.
  • Anderson P, Lomo T. Mode of activation of hippocampal pyramidal cells by excitatory synapses on dendrites. Exp Brain Res. 1966;2:247–260.
  • Bliss TV, Gardner-Medwin AR. Long-lasting potentiation of synaptic transmission in the dentate area of the unanaestetized rabbit following stimulation of the perforant path. J Physiol (Lond). 1973;232:357–374.
  • Papatheodoropoulos C, Kouvaros S. High-frequency stimulation-induced synaptic potentiation in dorsal and ventral CA1 hippocampal synapses: the involvement of NMDA receptors, mGluR5, and (L-type) voltage-gated calcium channels. Learn Mem. 2016;23:460–464.
  • Bouvier G, Higgins D, Spolidoro M, et al. Burst-dependent bidirectional plasticity in the cerebellum is driven by presynaptic NMDA receptors. Cell Rep. 2016;15:104–116.
  • Kudoh M, Shibuki K. Long-term potentiation of supragranular pyramidal outputs in the rat auditory cortex. Exp Brain Res. 1996;110:21–27.
  • Dan Y, Poo M-M. Spike timing-dependent plasticity of neural circuits. Neuron. 2004;44:23–30.
  • Larson J, Munkacsy E. Theta-burst LTP. Brain Res. 2015;1621:38–50.
  • Cash RF, Jegatheeswaran G, Ni Z, et al. Modulation of the direction and magnitude of Hebbian plasticity in human motor cortex by stimulus intensity and concurrent inhibition. Brain Stimul. 2017;10:83–90.
  • Clapp WC, Hamm JP, Kirk IJ, et al. Translating long-term potentiation from animals to humans: a novel method for noninvasive assessment of cortical plasticity. Biol Psychiatry. 2012;71:496–502.
  • Kirk IJ, McNair NA, Hamm JP, et al. Long-term potentiation (LTP) of human sensory-evoked potentials. Wiley Interdiscip Rev Cogn Sci. 2010;1:766–773.
  • Noh NA. Exploring cortical plasticity and oscillatory brain dynamics via transcranial magnetic stimulation and resting-state electroencephalogram. Malays J Med Sci. 2016;23:5–16.
  • Litvak V, Zeller D, Oostenveld R, et al. LTP-like changes induced by paired associative stimulation of the primary somatosensory cortex in humans: source analysis and associated changes in behaviour. Eur J Neurosci. 2007;25:2862–2874.
  • Ross RM, McNair NA, Fairhall SL, et al. Induction of orientation-specific LTP-like changes in human visual evoked potentials by rapid sensory stimulation. Brain Res Bull. 2008;76:97–101.
  • Clapp WC, Kirk IJ, Hamm JP, et al. Induction of LTP in the human auditory cortex by sensory stimulation. Eur J Neurosci. 2005;22:1135–1140.
  • Fritz J, Shamma S, Elhilali M, et al. Rapid task-related plasticity of spectrotemporal receptive fields in primary auditory cortex. Nat Neurosci. 2003;6:1216–1223.
  • Gilbert AG, Pickles JO. Responses of auditory nerve fibres in the guinea pig to noise bands of different widths. Hear Res. 1980;2:327–333.
  • Kral A, Majernik V. On lateral inhibition in the auditory system. Gen Physiol Biophys. 1996;15:109–127.
  • Kotak VC, Breithaupt AD, Sanes DH. Developmental hearing loss eliminates long-term potentiation in the auditory cortex. Proc Natl Acad Sci USA. 2007;104:3550–3555.