Kcnn2 blockade reverses learning deficits in a mouse model of fetal alcohol spectrum disorders

Shahid Mohammad1, Stephen J Page1, Li Wang1

  • 1Center for Neuroscience Research, Children's Research Institute, Children's National Hospital, Washington, DC, USA.

Nature Neuroscience
|March 24, 2020
PubMed

Insights

Prenatal alcohol exposure causes fetal alcohol spectrum disorders (FASDs) leading to learning disabilities. This study reveals increased Kcnn2 channel activity in the motor cortex contributes to motor deficits, offering a potential therapeutic target.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Pharmacology

Background:

  • Congenital conditions from prenatal alcohol exposure, such as fetal alcohol spectrum disorders (FASDs), are characterized by learning disabilities and impaired motor skills.
  • The precise molecular mechanisms underlying these neurodevelopmental deficits remain largely undetermined.
  • Previous research indicated stochastic molecular responses to alcohol in embryonic neural progenitor cells.

Purpose of the Study:

  • To investigate the pathophysiological consequences of heterogeneous molecular responses to alcohol in neural progenitor cells.
  • To identify specific molecular alterations in the developing brain that correlate with motor learning deficits in FASD.
  • To explore potential therapeutic interventions for learning disabilities associated with FASD.

Main Methods:

  • Utilized a mouse model of FASD to examine gene expression changes in neurons descended from progenitor cells exposed to alcohol.
  • Analyzed gene expression profiles in the motor cortex to identify specific molecular candidates.
  • Investigated the functional role of the calcium-activated potassium channel Kcnn2 in motor learning deficits.
  • Assessed the efficacy of pharmacologic blockade of Kcnn2 in ameliorating motor learning impairments.

Main Results:

  • Acute alcohol exposure in progenitor cells altered gene expression in their descendant neurons.
  • An upregulation of the calcium-activated potassium channel Kcnn2 in the motor cortex was observed and correlated with motor learning deficits in the FASD mouse model.
  • Pharmacologic blockade of Kcnn2 activity significantly improved motor learning deficits.

Conclusions:

  • Increased Kcnn2 expression and activity in the motor cortex is a key molecular mechanism contributing to motor learning disabilities in FASD.
  • Targeting Kcnn2 with pharmacologic blockers presents a promising novel therapeutic strategy for treating learning deficits in individuals with FASD.

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