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Petrocelli, J. E.

Publications and source records attributed to Petrocelli, J. E..

3 recordsLinked to original sources

The BAF complex works with FOS to regulate human neuronal activity-dependent ASD-associated gene programs

The BAF chromatin remodeling complex is critical to normal brain development, and rare variants within genes encoding BAF subunits are a common genetic cause of neurodevelopmental disorders, including autism spectrum disorder (ASD). Yet the factors that direct BAF binding across the neuronal genome, the human neuronal gene programs that are regulated by BAF, and the mechanisms whereby BAF subunit perturbation leads to ASD are not known. We find that BAF binds with the activity-dependent transcription factor FOS to distal regulatory regions that, in response to neuronal activity, undergo chromatin opening and show evidence of enhancer activation. Knock-out of ARID1A, a BAF subunit implicated in ASD, leads to decreased chromatin accessibility at FOS/BAF binding sites concomitant with decreased expression of nearby activity-regulated ASD-associated genes. Additionally, we find that the FOS binding motif in FOS/BAF-bound regions is highly constrained in the human population, and that rare variants in this motif in ASD-affected individuals disrupt stimulus-dependent enhancer activation. This suggests that genetic variation in FOS/BAF-bound regions contributes to ASD pathogenesis, due to an inability to recruit FOS and BAF to enhancers to promote gene expression. Together, our findings highlight a role for BAF in mediating neuronal transcriptional programs downstream of FOS and reveal a mechanism by which non-coding variants may impact BAF function and contribute to risk for ASD.

neuroscience↗

FOS binding sites are a hub for the evolution of activity-dependent gene regulatory programs in human neurons

After birth, sensory inputs to neurons trigger the induction of activity-dependent genes (ADGs) that mediate many aspects of neuronal maturation and plasticity. To identify human-specific ADGs, we characterized these genes in human-chimpanzee tetraploid neurons. We identified 235 ADGs that are differentially expressed between human and chimpanzee neurons and found that their nearby regulatory sites are species-biased in their binding of the transcription factor FOS. An assessment of these sites revealed that many are enriched for single nucleotide variants that promote or eliminate FOS binding in human neurons. Disrupting the function of individual species-biased FOS-bound enhancers diminishes expression of nearby genes and affects the firing dynamics of human neurons. Our findings indicate that FOS-bound enhancers are frequent sites of evolution and that they regulate human-specific ADGs that may contribute to the unusually protracted and complex process of postnatal human brain development.

evolutionary biology↗

Human-chimpanzee tetraploid system defines mechanisms of species-specific neural gene regulation

A major challenge in human evolutionary biology is to pinpoint genetic differences that underlie human-specific traits, such as increased neuron number and differences in cognitive behaviors. We used human-chimpanzee tetraploid cells to distinguish gene expression changes due to cis-acting sequence variants that change local gene regulation, from trans expression changes due to species differences in the cellular environment. In neural progenitor cells, examination of both cis and trans changes -- combined with CRISPR inhibition and transcription factor motif analyses -- identified cis-acting, species-specific gene regulatory changes, including to TNIK, FOSL2, and MAZ, with widespread trans effects on neurogenesis-related gene programs. In excitatory neurons, we identified POU3F2 as a key cis-regulated gene with trans effects on synaptic gene expression and neuronal firing. This study identifies cis-acting genomic changes that cause cascading trans gene regulatory effects to contribute to human neural specializations, and provides a general framework for discovering genetic differences underlying human traits.

evolutionary biology↗