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Transcription factor clusters as information transfer agents

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arxiv 2403.02943 v3 pith:T4PSFPVO submitted 2024-03-05 physics.bio-ph

classification physics.bio-ph
keywords bicoidclustersinformationgeneconcentrationmoleculesnucleusprecise
verification ladder T0 review T1 audit T2 compute T3 formal
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Deciphering how genes interpret information from the concentration of transcription factors (TFs) within the cell nucleus remains a fundamental question in gene regulation. Recent advancements have unveiled the heterogeneous distribution of TF molecules in the nucleus, posing challenges to the precise decoding of concentration signals. To explore this phenomenon, we employ high-resolution single-cell imaging of a fluorescently tagged TF protein, Bicoid, in living fly embryos. We show that accumulation of Bicoid in submicron clusters preserves the spatial information of the maternal Bicoid gradient, and that cluster intensity, size, and frequency offer remarkably precise spatial cues. We further discover that various known gene targets of Bicoid activation colocalize with clusters and that for the target gene Hunchback, this colocalization is dependent on its enhancer binding affinity. Modeling information transfer through these clusters suggests that clustering offers a more rapid sensing mechanism for global nuclear concentrations than freely diffusing TF molecules detected by simple enhancers.

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  1. Bridging spatial and temporal scales of developmental gene regulation

    physics.bio-ph 2025-01 conditional

    A review that synthesizes how chromatin dynamics, enhancer-promoter interactions, and polymer models together explain multiscale gene regulation in development.

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