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Zicher, B.

Publications and source records attributed to Zicher, B..

2 recordsLinked to original sources

High-frequency cortical neural inputs to muscles during movement cancellation

Cortical beta (13-30 Hz) and gamma (30-60 Hz) oscillations have been investigated during motor processing. Although they are at frequencies greater than the dynamic bandwidth of muscle contraction, these oscillations are partly transmitted from the cortex to motoneurons and muscles. Little is known about when and why this transmission occurs. We developed an experimental approach to examine these high frequency inputs to motoneurons under different motor states while maintaining a stable force, thus constraining behaviour. We acquired brain and muscle activity during a GO/NO-GO task. In this experiment, the effector muscle for the task (tibialis anterior) was kept tonically active during the trials, while participants (N=9) reacted to sequences of auditory stimuli by either keeping the contraction unaltered ( NO-GO trials), or by quickly performing a ballistic contraction ( GO trials). Motor unit (MU) firing activity was extracted from high-density surface and intramuscular electromyographic signals, and the changes in its spectral contents in the NO-GO trials were analysed. We observed an increase in beta and low-gamma (30-45 Hz) activity post NO-GO cue at the brain and muscle levels. There was also an increase in the activity within 8-12 Hz, which was only observed at the muscle level. Overall, our results suggest that the cortical processing of movement cancellation occurs at least in part via increased power of high-frequency oscillations transmitted downstream to the muscles. These changes occur without alterations in behaviour, suggesting that the downstream transmission of these high-frequency oscillations does not have a direct functional impact.

neuroscience↗

Transcranial alternating current stimulation does not modulate corticospinal activity in humans

Transcranial alternating current stimulation (TACS) is commonly used to synchronise the output of a cortical area to other parts of the nervous system, but evidence for this based on brain recordings in humans is challenging. The brain transmits beta oscillations (~21Hz) to tonically contracted limb muscles linearly and through the fastest corticospinal pathways. Therefore, muscle activity may be used as a proxy measure for the level of beta entrainment in the corticospinal tract due to TACS over motor cortex. Here, we assessed if TACS is able to modulate the neural inputs to muscles, which would provide an indirect evidence for TACS-driven neural entrainment. In the first part of this study, we ran a series of simulations of motor neuron (MN) pools receiving inputs from corticospinal neurons with different levels of beta entrainment. Results indicated that MNs should be highly sensitive to changes in corticospinal beta activity. Then, we ran experiments on healthy human subjects (N=10) in which TACS (at 1mA) was delivered over the motor cortex at 21Hz (beta stimulation), or at 7Hz or 40Hz (control conditions) while the abductor digiti minimi (ADM) or the tibialis anterior muscle (TA) were tonically contracted. Muscle activity was measured using high-density electromyography, which allowed us to decompose the spiking activity of pools of motor units innervating the studied muscles. By analysing motor unit pool activity, we observed that none of the tested TACS conditions could consistently alter the spectral characteristics of the common neural inputs received by the muscles. These results suggest that 1mA-TACS over motor cortex given at frequencies in the beta band does not affect corticospinal beta entrainment. Highlights- TACS is commonly used to entrain the communication between brain regions - It is challenging to find direct evidence supporting TACS-driven neural entrainment - Simulations show that motor neurons are sensitive to corticospinal beta entrainment - Motor unit activity from human muscles does not support TACS-driven entrainment

neuroscience↗