Dp71-Dystrophin Deficiency Alters Prefrontal Cortex Excitation-Inhibition Balance and Executive Functions

Rémi Chaussenot1, Muriel Amar1,2, Philippe Fossier1

  • 1Neuroscience Paris-Saclay Institute (Neuro-PSI), UMR 9197, Université Paris Sud, CNRS, Université Paris Saclay, Orsay, France.

Insights

Duchenne muscular dystrophy (DMD) is linked to brain issues. Loss of Dp71 in mice disrupts brain excitation/inhibition balance, causing executive function deficits relevant to DMD neurobiology.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Genetics

Background:

  • Duchenne muscular dystrophy (DMD) is associated with intellectual disability and neuropsychiatric disturbances.
  • Mutations affecting Dp71, a key dystrophin isoform in the brain, are implicated in these neurological issues.
  • The precise role of Dp71 deficiency in prefrontal cortex (PFC) function and executive processes remains unclear.

Purpose of the Study:

  • To investigate the impact of selective Dp71 loss on PFC excitatory/inhibitory (E/I) balance in a mouse model.
  • To identify specific executive dysfunctions associated with Dp71 deficiency.
  • To elucidate the neurobiological mechanisms underlying cognitive deficits in DMD.

Main Methods:

  • Utilized electrophysiological techniques (patch clamp) to assess neuronal activity in the PFC.
  • Employed behavioral tests to evaluate executive functions in Dp71-null mice.
  • Studied a transgenic mouse model with selective Dp71 loss, exhibiting no muscular dystrophy.

Main Results:

  • Dp71-null mice exhibit a shift in PFC E/I balance towards enhanced excitation.
  • Alterations in AMPA receptor-mediated glutamatergic transmission and reduced synaptic plasticity were observed.
  • Deficits in cognitive flexibility and spatial working memory were evident in Dp71-null mice.

Conclusions:

  • Impaired cortical E/I balance and executive dysfunction contribute to intellectual and behavioral disturbances in DMD.
  • Dp71 deficiency impacts glutamatergic transmission and synaptic plasticity, affecting higher-order cognitive functions.
  • Findings suggest therapeutic targets in excitatory neurotransmission for DMD-associated neurobiological conditions.

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