Transcriptional induction of heat shock protein (HSP) genes is accompanied by dynamic changes in their 3D structure and spatial organization, yet the molecular basis for these phenomena remains unknown. Using chromosome conformation capture and single-cell imaging, we show that genes transcriptionally activated by Hsf1 specifically interact across chromosomes and coalesce into diffraction-limited intranuclear foci. Genes activated by the alternative stress regulators Msn2/Msn4, in contrast, do not interact among themselves nor with Hsf1 targets. Likewise, constitutively expressed genes, even those interposed between HSP genes, show no detectable interaction. Hsf1 forms discrete subnuclear puncta when stress activated, and these puncta dissolve in concert with transcriptional attenuation, paralleling the kinetics of HSP gene coalescence and dissolution. Nuclear Hsf1 and RNA Pol II are both necessary for intergenic HSP gene interactions, while DNA-bound Hsf1 is necessary and sufficient to drive heterologous gene coalescence. Our findings demonstrate that Hsf1 can dynamically restructure the yeast genome.
Heat Shock Factor 1 Drives Intergenic Association of Its Target Gene Loci upon Heat Shock.
热休克因子 1 在热休克时驱动其靶基因位点的基因间关联
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作者:Chowdhary Surabhi, Kainth Amoldeep S, Pincus David, Gross David S
| 期刊: | Cell Reports | 影响因子: | 6.900 |
| 时间: | 2019 | 起止号: | 2019 Jan 2; 26(1):18-28 |
| doi: | 10.1016/j.celrep.2018.12.034 | ||
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