Sex-biased transcriptome in embryonic mouse cortices under Pax6 haploinsufficiency highlights Pbdc1 as a candidate regulator

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The study examined how Pax6 haploinsufficiency affects embryonic mouse cortical development, focusing on sex-biased differences in transcriptomes and cytoarchitecture across wild-type, homozygous mutant, and heterozygous (Sey/+) embryos. They found more pronounced sex-biased alterations under Pax6 haploinsufficiency, including selective upregulation of the X-linked gene Pbdc1 in Sey/+ females, with evidence that Pbdc1 interacts with RNA-splicing factors and that Pbdc1 overexpression reduces intermediate progenitor cells in the developing cortex. ChIP-qPCR showed Pax6 and BAF occupancy at the Pbdc1 promoter in wild-type embryos, and CUT&Tag revealed increased H3K4me3 specifically in Sey/+ females; the authors’ key caveat is that the work identifies candidate regulatory relationships and functional effects in this developmental context rather than fully establishing downstream mechanisms. This paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Mutations in Pax6 , encoding a transcription factor essential for brain patterning and neurogenesis, have been linked to female-biased cortical malformations and behavioral abnormalities, yet the molecular basis remains unclear. Here we show that Pax6 haploinsufficiency ( Sey /+) produces more pronounced sex-biased alterations in the transcriptomes and cytoarchitecture of embryonic mouse cortices than those in wild-type and homozygous mutants ( Sey / Sey ). Pbdc1 , a previously uncharacterized X-linked gene implicated in autism, is selectively upregulated in Sey /+ females and proximity-dependent protein-protein interaction analysis reveals Pbdc1 interacts with RNA-splicing factors. Moreover, Pbdc1 overexpression reduces intermediate progenitor cells in the developing cortex. ChIP-qPCR further demonstrates Pax6 and BAF occupancy at the Pbdc1 promoter in WT embryos of both sexes and CUT&Tag shows H3K4me3 elevation selectively in Sey /+ females. Our findings indicate that partial loss of Pax6 shapes the embryonic cortical transcriptomes and cytoarchitecture in a sex-dependent manner and highlight Pbdc1 as a candidate regulator of sex-biased corticogenesis.
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Abstract Mutations in Pax6, encoding a transcription factor essential for brain patterning and neurogenesis, have been linked to female-biased cortical malformations and behavioral abnormalities, yet the molecular basis remains unclear. Here we show that Pax6 haploinsufficiency (Sey/+) produces more pronounced sex-biased alterations in the transcriptomes and cytoarchitecture of embryonic mouse cortices than those in wild-type and homozygous mutants (Sey/Sey). Pbdc1, a previously uncharacterized X-linked gene implicated in autism, is selectively upregulated in Sey/+ females and proximity-dependent protein-protein interaction analysis reveals Pbdc1 interacts with RNA-splicing factors. Moreover, Pbdc1 overexpression reduces intermediate progenitor cells in the developing cortex. ChIP-qPCR further demonstrates Pax6 and BAF occupancy at the Pbdc1 promoter in WT embryos of both sexes and CUT&Tag shows H3K4me3 elevation selectively in Sey/+ females. Our findings indicate that partial loss of Pax6 shapes the embryonic cortical transcriptomes and cytoarchitecture in a sex-dependent manner and highlight Pbdc1 as a candidate regulator of sex-biased corticogenesis. Competing Interest Statement The authors have declared no competing interest.

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