Low-level repressive histone marks fine-tune gene transcription in neural stem cells.

Rajan, Arjun; Anhezini, Lucas; Rives-Quinto, Noemi; Chhabra, Jay Y; Neville, Megan C; Larson, Elizabeth D; Goodwin, Stephen F; Harrison, Melissa M et al. · Elife · 2023

basic_science · Level V

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Abstract

Coordinated regulation of gene activity by transcriptional and translational mechanisms poise stem cells for a timely cell-state transition during differentiation. Although important for all stemness-to-differentiation transitions, mechanistic understanding of the fine-tuning of gene transcription is lacking due to the compensatory effect of translational control. We used intermediate neural progenitor (INP) identity commitment to define the mechanisms that fine-tune stemness gene transcription in fly neural stem cells (neuroblasts). We demonstrate that the transcription factor Fruitless<sup>C</sup> (Fru<sup>C</sup>) binds <i>cis</i>-regulatory elements of most genes uniquely transcribed in neuroblasts. Loss of <i>fru<sup>C</sup></i> function alone has no effect on INP commitment but drives INP dedifferentiation when translational control is reduced. Fru<sup>C</sup> negatively regulates gene expression by promoting low-level enrichment of the repressive histone mark H3K27me3 in gene <i>cis</i>-regulatory regions. Identical to <i>fru<sup>C</sup></i> loss-of-function, reducing Polycomb Repressive Complex 2 activity increases stemness gene activity. We propose low-level H3K27me3 enrichment fine-tunes gene transcription in stem cells, a mechanism likely conserved from flies to humans.

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