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Enhancer buffering protects dosage-sensitive housekeeping genes during vulnerable developmental transitions

Created on 31 Jul 2026

Authors

Ni, C., Ichino, L., Swigut, T., Wysocka, J.

Abstract

Housekeeping genes maintain robust expression across cell types despite dynamic transcription factor fluctuations, yet their haploinsufficiency is associated with many tissue-specific developmental disorders. To understand this paradox, we focus on TCOF1, a broadly expressed regulator of rRNA synthesis, whose haploinsufficiency causes Treacher Collins syndrome (TCS). We show that transitional cranial neural crest cells (tCNCC) undergoing mesenchymal specification exhibit extreme dosage-sensitivity to TCOF1, but not to RNA polymerase I, explaining both cellular origins of TCS and prevalence of TCOF1 mutations in the disease. To maintain robust expression, TCOF1 deploys CNCC-specific enhancers that buffer against fluctuations in promoter-regulating factors, converting sensitive expression responses into threshold-protected outputs. Systematic promoter-enhancer coupling experiments demonstrate this principle generalizes across many dosage-sensitive housekeeping genes, whose promoters operate near saturation and only reveal their enhancer-dependency under suboptimal conditions. Thus, enhancers play a unique role at housekeeping promoters: rather than amplifying expression, they ensure its robustness during vulnerable developmental transitions.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 31 Jul 2026.

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