A human specific CCG repeat in the RBFOX1 promoter is implicated in speech and autism

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Researchers identified a human-specific CCG repeat in the RBFOX1 promoter that enhances transcription and is disrupted by variants linked to autism and language disorders.

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The study investigates whether human-specific regulatory sequence changes in RBFOX1 could mechanistically link language-related brain circuits to autism spectrum disorder. Using cross-species brain single-cell multi-omic analyses and more complete genomes (including archaic humans), the authors identify a human-specific CCG insertion in the RBFOX1 promoter that is fixed in archaic and modern humans but disrupted by rare clinical variants associated with language phenotypes and ASD. Binding models and reporter assays show that the human allele drives stronger EGR1-dependent transcription than the chimpanzee allele, and the same CCG motif appears in the core promoters of other ASD-implicated genes (including PTCHD1), where an ASD-causative CCG-repeated variant increases promoter activity; a stated limitation is that functional effects are inferred from reporter and computational models rather than direct in vivo validation. This paper is centrally about endometriosis and/or adenomyosis.

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Abstract

Human speech likely arose from regulatory changes for speech-related brain regions, yet causal variants and mechanisms remain unclear. RBFOX1 is a prime candidate, showing specialized expression in vocal learning circuits of human and zebra finch brains and carrying a promoter deletion linked to autism spectrum disorder (ASD) with language dysfunction. Here, we perform integrative analyses with cross-species brain single-cell multi-omic data and the more complete genomes of the Vertebrate Genomes Project. We identify a human-specific CCG insertion in the RBFOX1 promoter, creating a human-unique CCG-repeated motif. This motif is fixed in both archaic and modern humans but is disrupted by rare clinical variants that exhibit language-related phenotypes and autism. Binding motif models predicted, and reporter assays reveal that this human allele drives stronger EGR1 -dependent transcription than its chimpanzee allele. Genome-wide, 107 other genes have core promoters with the identical motif; enriched for postsynapse and implicated in ASD, including PTCHD1 . At the PTCHD1 promoter, an ASD-causative CCG-repeated variant enhances EGR1 -dependent promoter activity, and its activating effects are predicted in human brain regions using AlphaGenome. Our findings suggest that small variations in the number of CCG repeats in promoters can exert a large regulatory effect on complex traits and their associated disorders.
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Abstract Human speech likely arose from regulatory changes for speech-related brain regions, yet causal variants and mechanisms remain unclear. RBFOX1 is a prime candidate, showing specialized expression in vocal learning circuits of human and zebra finch brains and carrying a promoter deletion linked to autism spectrum disorder (ASD) with language dysfunction. Here, we perform integrative analyses with cross-species brain single-cell multi-omic data and the more complete genomes of the Vertebrate Genomes Project. We identify a human-specific CCG insertion in the RBFOX1 promoter, creating a human-unique CCG-repeated motif. This motif is fixed in both archaic and modern humans but is disrupted by rare clinical variants that exhibit language-related phenotypes and autism. Binding motif models predicted, and reporter assays reveal that this human allele drives stronger EGR1 -dependent transcription than its chimpanzee allele. Genome-wide, 107 other genes have core promoters with the identical motif; enriched for postsynapse and implicated in ASD, including PTCHD1 . At the PTCHD1 promoter, an ASD-causative CCG-repeated variant enhances EGR1 -dependent promoter activity, and its activating effects are predicted in human brain regions using AlphaGenome. Our findings suggest that small variations in the number of CCG repeats in promoters can exert a large regulatory effect on complex traits and their associated disorders. Full Text Availability The license terms selected by the author(s) for this preprint version do not permit archiving in PMC. The full text is available from the preprint server.

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License: CC-BY-4.0