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Placental Insulin-like Growth Factor 1 Insufficiency Drives Neurodevelopmental Disorder-Relevant Behavioral Changes
Annemarie J Carver1,2,3, Faith M Fairbairn2,3, Robert J Taylor2,3
1Interdisciplinary Graduate Program in Genetics, University of Iowa, IA, USA.
Insights
Placental insulin-like growth factor 1 (IGF1) is crucial for fetal brain development. Its insufficiency leads to sex-specific neurodevelopmental and behavioral changes, potentially increasing autism risk.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- Perinatal adversities, like preterm birth, can reduce placental support, including essential hormones like insulin-like growth factor 1 (IGF1).
- Reduced IGF1 and preterm birth are linked to increased risk of neurodevelopmental disorders, such as autism spectrum disorder.
- The specific role of placental IGF1 insufficiency in driving these neurodevelopmental risks remains unclear.
Purpose of the Study:
- To investigate the causal link between placental IGF1 insufficiency and neurodevelopmental outcomes.
- To examine sex-specific effects of placental IGF1 deficiency on embryonic forebrain development and postnatal neurobehavior.
Main Methods:
- Utilized placental-targeted CRISPR in mice to create IGF1 insufficiency.
- Assessed sex-specific embryonic forebrain development, including structural and transcriptomic changes.
- Evaluated postnatal neurobehavioral trajectories in offspring using learning, motor, and affective tasks, alongside neurostereology.
Main Results:
- Placental IGF1 insufficiency reduced embryonic forebrain growth and cell populations in both sexes.
- Transcriptomic analysis revealed sex-specific alterations, with downregulated autism-relevant pathways in males and enrichment of autism-risk genes in females.
- Male offspring exhibited deficits in motor learning and increased stereotyped behaviors, while females showed distinct behavioral changes and minimal structural alterations.
Conclusions:
- Placental IGF1 is critical for normal offspring forebrain development.
- Early placental IGF1 deficits result in persistent, sex-specific neurobehavioral effects.
- Findings offer insights into autism risk mechanisms and potential targets for interventions following early placental insufficiency.
Abstract:
Preterm birth, placental insufficiency, and other perinatal adversities lead to the loss of placental support including critical hormones, such as Insulin-like growth factor 1 (IGF1), required for neurodevelopment. Decreased IGF1 and preterm birth are associated with neurodevelopmental disorder risk, including autism spectrum disorder. Whether placental Igf1 insufficiency drives neurodevelopmental risks is not understood. To understand these mechanisms, placental-targeted CRISPR manipulation in mice was employed to induce placental Igf1 insufficiency. Subsequently, embryonic forebrain development was assessed sex-specifically to identify structural, cellular, and transcriptomic changes. Postnatal offspring were used to determine neurobehavioral trajectories relevant to neurodevelopmental disorders as assessed through learning, motor, and affective behavioral tasks and neurostereology. Placental Igf1 insufficiency reduced embryonic forebrain growth, including decreased cell population across males and females. Embryonic forebrain transcriptomics revealed sex-specific alterations. Developmental pathways including insulin-like growth factor receptor signaling, laminin processes, and hormone synthesis were downregulated in male forebrain, driven by autism risk genes, Reln and Lama1. Altered genes in female forebrain were enriched for autism-risk genes including Grin2b and Dync1h1. Following these transcriptomic differences, postnatal neurobehavioral trajectories were sex-specific. Male offspring uniquely showed reduced motor learning, increased stereotyped behaviors, altered reversal learning, and reduced forebrain neuronal number. Female offspring displayed opposite behavioral changes as males and few changes in forebrain structure. Assessment of both adult male and female offspring forebrain white matter revealed an increased astrocyte population, a phenotype that appears similar to reactive astrogliosis seen in other models of preterm birth and placental insufficiency. The provision of Igf1 specifically from placenta is critical for offspring forebrain development. This temporary early deficit has persistent sex-specific neurobehavioral effects. These outcomes have relevance for neurodevelopmental disorder risk and highlight mechanisms that could facilitate intervention development for adverse outcomes after early loss of placental hormone support in perinatal adversity.
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