Phase separation of ligand-activated enhancers licenses cooperative chromosomal enhancer assembly.
Sreejith J NairLu YangDario MeluzziSoohwan OhFeng YangMeyer J FriedmanSusan WangTom SuterIbraheem AlshareedahAmir GamlielQi MaJie ZhangYiren HuYuliang TanKenneth A OhgiRanveer Singh JayaniPriya R BanerjeeAneel K AggarwalMichael G RosenfeldPublished in: Nature structural & molecular biology (2019)
A crucial feature of differentiated cells is the rapid activation of enhancer-driven transcriptional programs in response to signals. The potential contributions of physicochemical properties of enhancer assembly in signaling events remain poorly understood. Here we report that in human breast cancer cells, the acute 17β-estradiol-dependent activation of functional enhancers requires assembly of an enhancer RNA-dependent ribonucleoprotein (eRNP) complex exhibiting properties of phase-separated condensates. Unexpectedly, while acute ligand-dependent assembly of eRNPs resulted in enhancer activation sensitive to chemical disruption of phase separation, chronically activated enhancers proved resistant to such disruption, with progressive maturation of eRNPs to a more gel-like state. Acute, but not chronic, stimulation resulted in ligand-induced, condensin-dependent changes in spatial chromatin conformation based on homotypic enhancer association, resulting in cooperative enhancer-activation events. Thus, distinct physicochemical properties of eRNP condensates on enhancers serve as determinants of rapid ligand-dependent alterations in chromosomal architecture and cooperative enhancer activation.
Keyphrases
- transcription factor
- binding protein
- liver failure
- drug induced
- gene expression
- respiratory failure
- endothelial cells
- multiple sclerosis
- machine learning
- breast cancer cells
- aortic dissection
- dna damage
- public health
- intensive care unit
- risk assessment
- copy number
- endoplasmic reticulum stress
- oxidative stress
- cell cycle arrest
- genome wide
- cell death
- dna methylation
- cell proliferation
- crystal structure
- quantum dots
- pi k akt
- hyaluronic acid