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Maternal immune activation disrupts epigenomic and functional maturation of cortical excitatory neurons

Chi-Yu Lai, Jessica Arzavala, Adoni Duarte, Shiyuan Wang and 9 more

Molecular Psychiatry | Sep 2, 2026

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The results suggest that mid-gestation MIA may alter the development of deep-layer neurons through an epigenomic blockade of Tbr1 function, thereby perturbing normal cortical circuit formation.

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Elevated levels of maternal pro-inflammatory cytokines following severe infection during gestation can disrupt offspring neural development and increase the risk of neurodevelopmental disorders. The viral mimetic Poly(I:C) reproduces the effects of gestational influenza exposure, leading to behavioral outcomes that recapitulate neurodevelopmental disorder phenotypes. Although Poly(I:C)-induced maternal immune activation (PIC-MIA) alters the epigenome, behavior and cognition of offspring in adulthood, it remains unclear when these changes occur and how MIA influences the epigenomic regulatory programming across the transition from embryonic development to the mature brain. Here, we examined the effects of PIC-MIA on the epigenomic maturation of the frontal cortex, focusing on excitatory neuron-specific DNA methylation and transcriptomic dynamics throughout perinatal development. Mid-gestation PIC-MIA disrupted development of the excitatory neuron transcriptome, with the largest alterations observed at birth. PIC-MIA altered the development of the mature DNA methylation program of excitatory neurons at thousands of genomic regulatory regions that normally gain or lose methylation during development. Transcription factor binding site analyses of these differentially methylated regions revealed a significant enrichment of Tbr1 motifs within hyper-methylated deep-layer neuron-specific regions at birth. Notably, transcriptional targets of Tbr1 were down-regulated at birth despite up-regulation of Tbr1 transcription, suggesting PIC-MIA uncouples Tbr1 expression from its regulatory function in deep-layer neurons. Electrophysiological recordings of intrinsic and firing properties further confirmed a lasting disruption in deep-layer neuronal activity. Our results suggest that mid-gestation MIA may alter the development of deep-layer neurons through an epigenomic blockade of Tbr1 function, thereby perturbing normal cortical circuit formation.

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Chi-Yu Lai

first | Salk Institute for Biological Studies | ORCID 0000-0002-5498-1946

Jessica Arzavala

middle | Salk Institute for Biological Studies

Adoni Duarte

middle | Salk Institute for Biological Studies

Shiyuan Wang

middle | University of California San Diego | ORCID 0000-0002-5028-5839

Junhao Li

middle | University of California San Diego | ORCID 0000-0001-6784-3780

Hanqing Liu

middle | Salk Institute for Biological Studies | ORCID 0000-0002-5114-6048

Julia Osteen

middle | Salk Institute for Biological Studies | ORCID 0000-0001-7058-3297

Rosa Castanon

middle | Salk Institute for Biological Studies | ORCID 0000-0003-1791-002X

Joseph R. Nery

middle | Salk Institute for Biological Studies | ORCID 0000-0003-0153-5659

Susan B. Powell

middle | University of California San Diego | ORCID 0000-0002-7474-9300

Joseph R. Ecker

middle | Salk Institute for Biological Studies | ORCID 0000-0001-5799-5895

Eran A. Mukamel

middle | University of California San Diego | ORCID 0000-0003-3203-9535

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Citation

BibTeX

@article{Lai2026Maternal,
  title = {Maternal immune activation disrupts epigenomic and functional maturation of cortical excitatory neurons},
  author = {Chi-Yu Lai and Jessica Arzavala and Adoni Duarte and Shiyuan Wang and Junhao Li and Hanqing Liu and Julia Osteen and Rosa Castanon and Joseph R. Nery and Susan B. Powell and Joseph R. Ecker and Eran A. Mukamel and M. Margarita Behrens},
  journal = {Molecular Psychiatry},
  year = {2026},
  doi = {10.1038/s41380-026-03856-1},
  url = {https://doi.org/10.1038/s41380-026-03856-1}
}

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