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Integrated Approach for Studying Adaptation Mechanisms in the Human Somatosensory Cortical Network

Overview
Journal Exp Brain Res
Specialty Neurology
Date 2014 Jul 26
PMID 25059913
Citations 7
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Abstract

Magnetoencephalography and independent component analysis (ICA) was utilized to study and characterize neural adaptation in the somatosensory cortical network. Repetitive punctate tactile stimuli were applied unilaterally to the dominant hand and face using a custom-built pneumatic stimulator called the TAC-Cell. ICA-based source estimation from the evoked neuromagnetic responses indicated cortical activity in the contralateral primary somatosensory cortex (SI) for face stimulation, while hand stimulation resulted in robust contralateral SI and posterior parietal cortex (PPC) activation. Activity was also observed in the secondary somatosensory cortical area (SII) with reduced amplitude and higher variability across subjects. There was a significant difference in adaptation rate between SI and higher-order somatosensory cortices for hand stimulation. Adaptation was significantly dependent on stimulus frequency and pulse index within the stimulus train for both hand and face stimulation. The peak latency of the activity was significantly dependent on stimulation site (hand vs. face) and cortical area (SI vs. PPC). The difference in the peak latency of activity in SI and PPC is presumed to reflect a hierarchical serial-processing mechanism in the somatosensory cortex.

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References
1.
Binkofski F, Buccino G, Posse S, Seitz R, Rizzolatti G, Freund H . A fronto-parietal circuit for object manipulation in man: evidence from an fMRI-study. Eur J Neurosci. 1999; 11(9):3276-86. DOI: 10.1046/j.1460-9568.1999.00753.x. View

2.
Alonso A, Koutlas I, Leuthold A, Lewis S, Georgopoulos A . Cortical processing of facial tactile stimuli in temporomandibular disorder as revealed by magnetoencephalography. Exp Brain Res. 2010; 204(1):33-45. DOI: 10.1007/s00221-010-2291-6. View

3.
Brenner N, Bialek W, de Ruyter van Steveninck R . Adaptive rescaling maximizes information transmission. Neuron. 2000; 26(3):695-702. DOI: 10.1016/s0896-6273(00)81205-2. View

4.
Jones E, Powell T . Connexions of the somatic sensory cortex of the rhesus monkey. I. Ipsilateral cortical connexions. Brain. 1969; 92(3):477-502. DOI: 10.1093/brain/92.3.477. View

5.
Hyvarinen J . Posterior parietal lobe of the primate brain. Physiol Rev. 1982; 62(3):1060-129. DOI: 10.1152/physrev.1982.62.3.1060. View