Relative prenatal and postnatal maternal contributions to schizophrenia-related neurochemical dysfunction after in

Urs Meyer1, Myriel Nyffeler, Severin Schwendener

  • 1Laboratory of Behavioural Neurobiology, ETH Zurich, Schwerzenbach, Switzerland.

Insights

Prenatal infection exposure risks neuropsychiatric disorders. This study shows prenatal inflammation, not postnatal maternal factors, primarily drives schizophrenia and autism risks in offspring.

Area of Science:

  • Neuroscience
  • Immunology
  • Psychiatry

Background:

  • Prenatal infections are linked to later-life neuropsychiatric disorders like schizophrenia and autism.
  • The specific roles of prenatal versus postnatal maternal factors in this association remain unclear.

Purpose of the Study:

  • To differentiate the contributions of prenatal inflammatory events and postnatal maternal factors in offspring neurodevelopment.
  • To investigate the mechanisms underlying the link between prenatal immune challenge and neuropsychiatric disorders.

Main Methods:

  • Utilized a mouse model exposing pregnant dams to polyriboinosinic-polyribocytidilic acid (PolyI:C) or vehicle on gestation day 9.
  • Cross-fostering offspring to surrogate mothers with or without prior inflammatory treatment during pregnancy.
  • Assessed dopamine- and glutamate-related neurochemical and neuroanatomical changes in offspring.

Main Results:

  • Prenatal immune challenge induced dopamine and glutamate system disturbances irrespective of postnatal rearing conditions.
  • Postnatal exposure to immune-challenged surrogate mothers also caused specific neurobiological abnormalities in control offspring.
  • Schizophrenia-related dysfunctions were primarily mediated by prenatal, not postnatal, maternal effects.

Conclusions:

  • Prenatal immune activation is a key driver of specific schizophrenia-related neurobiological changes.
  • While prenatal factors are primary, maternal immune challenges during pregnancy may alter postpartum factors, influencing distinct psychopathology risks in offspring.
  • Findings highlight the critical impact of the prenatal inflammatory environment on long-term neurodevelopmental outcomes.

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