Maternal Immune Activation Disrupts Dopamine System in the Offspring

Antonio Luchicchi1, Salvatore Lecca1, Miriam Melis1

  • 1Division of Neuroscience and Clinical Pharmacology, Department of Biomedical Sciences, University of Cagliari, Monserrato, Italy (Drs Luchicchi, Lecca, Melis, Ms De Felice, Drs Cadeddu, Frau, Fadda, Devoto, and Pistis); Neuroscience Institute, National Research Council of Italy, Section of Cagliari, Italy (Drs Muntoni and Pistis).Present address (A.L.): Department of Integrative Neurophysiology, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam, Vrije Universiteit, Amsterdam, Netherlands.Present address (S.L.): Institut du Fer à Moulin, 75005, Paris, France; Inserm, UMR-S 839, 75005, Paris, France.

Insights

Maternal viral infections during pregnancy impair offspring brain development, leading to psychiatric disorders. This study shows prenatal immune activation disrupts dopamine system function, offering a valid animal model for schizophrenia research.

Area of Science:

  • Neuroscience
  • Psychiatry
  • Immunology

Background:

  • Maternal viral infections in utero are linked to neurodevelopmental psychiatric disorders like schizophrenia.
  • Immune responses during pregnancy can negatively impact fetal brain maturation, increasing susceptibility to later-life psychopathology.
  • The role of dopamine system dysfunction in maternal immune activation models of schizophrenia requires further elucidation.

Purpose of the Study:

  • To investigate the impact of maternal immune activation on dopamine neuron activity and function.
  • To validate a rat model using polyriboinosinic-polyribocytidilic acid for studying schizophrenia's neurodevelopmental origins.

Main Methods:

  • Utilized a rat model with prenatal polyriboinosinic-polyribocytidilic acid administration to mimic maternal viral infection.
  • Measured extracellular dopamine levels in the nucleus accumbens shell and medial prefrontal cortex via brain microdialysis.
  • Assessed ventral tegmental area dopamine neuron activity using in vivo electrophysiology.

Main Results:

  • Adult rats exposed to polyriboinosinic-polyribocytidilic acid exhibited deficits in sensorimotor gating, memory, and social interaction.
  • Increased baseline extracellular dopamine was observed in the nucleus accumbens, but not the medial prefrontal cortex.
  • Dopamine neurons in polyriboinosinic-polyribocytidilic acid-treated rats showed reduced firing rates and population activity.

Conclusions:

  • Maternal immune activation significantly disrupts the dopamine system.
  • The polyriboinosinic-polyribocytidilic acid rat model demonstrates validity for studying psychiatric conditions with neurodevelopmental origins.
  • Findings support the link between prenatal immune challenges and altered dopamine signaling relevant to schizophrenia pathophysiology.
Abstract

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