Mismatch negativity-like potential (MMN-like) in the subthalamic nuclei in Parkinson's disease patients

Eduard Minks1, Pavel Jurák, Jan Chládek

  • 1First Department of Neurology, Faculty of Medicine, Masaryk University and St. Anne's Hospital, Brno, Czech Republic, eduard.minks@fnusa.cz.

Insights

Mismatch negativity (MMN) potentials, indicative of unconscious auditory processing, were detected within the human subthalamic nuclei (STN) for the first time. This finding suggests the STN receives auditory information, potentially via the hyperdirect pathway.

Area of Science:

  • Neuroscience
  • Auditory Neuroscience
  • Clinical Electrophysiology

Background:

  • Mismatch negativity (MMN) is an electrophysiological response to infrequent auditory changes, reflecting sensory processing independent of attention.
  • The subthalamic nuclei (STN) are primarily known for motor control, but their role in sensory processing remains less understood.
  • Previous research has not investigated MMN generation within the human STN.

Purpose of the Study:

  • To investigate the presence of MMN within the human STN.
  • To explore the potential for unconscious auditory information processing in the STN.
  • To determine if MMN can be recorded intracranially in the STN.

Main Methods:

  • Intracerebral electroencephalogram (EEG) recordings were obtained from five Parkinson's disease patients with STN depth electrodes.
  • A standard MMN paradigm involving auditory stimuli was employed.
  • EEG data were analyzed for MMN-like potentials using both extracranial and intracerebral referencing.

Main Results:

  • MMN-like potentials were successfully recorded in the bilateral STN of all five patients.
  • Both far-field and near-field MMN-like potentials were observed, with some exhibiting phase reversals.
  • The mean latency of these intracerebral MMN-like potentials was 214 ± 38 ms.

Conclusions:

  • The findings provide the first evidence of MMN-like potentials in the human STN, indicating unconscious auditory processing within this structure.
  • This suggests the STN receives auditory sensory information from other brain regions.
  • Further research is warranted to elucidate the pathways involved (e.g., hyperdirect pathway) and the STN's role in sensorimotor integration.

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