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Updated: Jun 23, 2026

In Vivo Functional Study of Disease-associated Rare Human Variants Using Drosophila
Published on: August 20, 2019
Autism-associated substitutions at ASN374 disrupt forkhead box P2-mediated regulation of DNA binding by t-box brain
Raymond Hartman1, Ashleigh Blane1, Sean Engelhardt1
1Protein Structure-Function Research Lab, School of Molecular and Cell Biology, University of the Witwatersrand, Johannesburg, 2050, South Africa.
Abstract:
TBR1 is a neurodevelopmental transcription factor whose function depends on the coordinated integration of DNA binding with regulatory protein-protein interactions. Despite physiological links between TBR1 and other transcription factors, the biochemical mechanisms that couple DNA binding to partner-mediated regulation, and how these processes are disrupted by disease-associated variants, remain poorly defined. Here we provide the first direct biochemical evidence that the FOXP2 forkhead domain (FHD) binds the TBR1 T-box domain and we show that this interaction is modulated by residue Asn374. Using fluorescence anisotropy and EMSA, we demonstrate that autism-associated N374H and N374Y substitutions weaken TBR1 binding to T-box DNA and alter its response to FOXP2. Although both variants reduce FOXP2-TBR1 affinity, they paradoxically resist FOXP2-driven dissociation of TBR1 from DNA, indicating impaired FOXP2-dependent regulation of TBR1. Molecular modelling and molecular dynamics simulations indicate that substitutions at Asn374 do not abolish the FOXP2-binding surface but instead reconfigure neighbouring contacts and alter conformational dynamics, yielding a more compact yet flexible T-box domain within FOXP2-associated complexes. Collectively, our results identify Asn374 as an allosteric control point that coordinates TBR1 DNA-binding dynamics with FOXP2 engagement. This work provides a mechanistic framework for how FOXP2-dependent modulation of transcription during neurodevelopment may be altered in autism.
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