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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.
Abstract:
In the Duchenne muscular dystrophy (DMD) syndrome, mutations affecting expression of Dp71, the main dystrophin isoform of the multipromoter dmd gene in brain, have been associated with intellectual disability and neuropsychiatric disturbances. Patients' profile suggests alterations in prefrontal cortex-dependent executive processes, but the specific dysfunctions due to Dp71 deficiency are unclear. Dp71 is involved in brain ion homeostasis, and its deficiency is expected to increase neuronal excitability, which might compromise the integrity of neuronal networks undertaking high-order cognitive functions. Here, we used electrophysiological (patch clamp) and behavioral techniques in a transgenic mouse that display a selective loss of Dp71 and no muscular dystrophy, to identify changes in prefrontal cortex excitatory/inhibitory (E/I) balance and putative executive dysfunctions. We found prefrontal cortex E/I balance is shifted toward enhanced excitation in Dp71-null mice. This is associated with a selective alteration of AMPA receptor-mediated glutamatergic transmission and reduced synaptic plasticity, while inhibitory transmission is unaffected. Moreover, Dp71-null mice display deficits in cognitive processes that depend on prefrontal cortex integrity, such as cognitive flexibility and sensitivity of spatial working memory to proactive interference. Our data suggest that impaired cortical E/I balance and executive dysfunctions contribute to the intellectual and behavioral disturbances associated with Dp71 deficiency in DMD, in line with current neurobehavioral models considering these functions as key pathophysiological factors in various neurodevelopmental disorders. These new insights in DMD neurobiology also suggest new directions for therapeutic developments targeting excitatory neurotransmission, as well as for guidance of academic environment in severely affected DMD children.
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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