Visually Evoked 3-5 Hz Membrane Potential Oscillations Reduce the Responsiveness of Visual Cortex Neurons in Awake

Michael C Einstein1,2, Pierre-Olivier Polack3, Duy T Tran1

  • 1Department of Neurology and Psychiatry, David Geffen School of Medicine.

Insights

Low-frequency membrane potential (Vm) oscillations occur in awake mice and disrupt visual processing. These 3-5 Hz oscillations happen in both aroused and unaroused states, impacting sensory information during active wakefulness.

Area of Science:

  • Neuroscience
  • Computational Neuroscience
  • Sensory Processing

Background:

  • Low-frequency membrane potential (Vm) oscillations were traditionally associated with sleep and anesthesia.
  • Recent findings suggested their presence in inactive awake states, but their role in active wakefulness and sensory processing remained unclear.

Purpose of the Study:

  • To investigate if low-frequency Vm oscillations occur during active awake states in mice.
  • To determine the impact of these oscillations on sensory processing in the visual cortex.
  • To examine the relationship between Vm oscillations and arousal levels.

Main Methods:

  • Two-photon guided whole-cell recordings of Vm in primary visual cortex layer 2/3 neurons of awake mice.
  • Passive visual stimulation and performance of visual/auditory discrimination tasks.
  • Pupillometry and locomotion speed to assess arousal levels.

Main Results:

  • Stereotyped 3-5 Hz Vm oscillations were recorded, characterized by rhythmic fluctuations and baseline hyperpolarization.
  • These oscillations significantly reduced excitatory neuron responses to preferred visual cues.
  • Vm oscillations occurred in both high and low arousal states, triggered by visual stimuli during tasks and passive viewing.

Conclusions:

  • Low-frequency Vm oscillations play a significant role in shaping sensory processing in visual cortical neurons.
  • These oscillations are not restricted to unaroused states and occur during active wakefulness and decision-making.
  • The findings reveal a novel mechanism by which Vm dynamics modulate neural responses during complex behaviors.

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