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Onikubo, T.

Publications and source records attributed to Onikubo, T..

2 recordsLinked to original sources

MED1 IDR acetylation reorganizes the transcription preinitiation complex, rewires 3D chromatin interactions and reprograms gene expression

With our current appreciation of the complexity of eukaryotic transcription, whose dysregulation drives diseases including cancer, it is becoming apparent that identification of key events coordinating multiple aspects of transcriptional regulation is of special importance. To elucidate how assembly of RNA polymerase II (Pol II) with Mediator complex preinitiation complexes (PICs) and formation of transcription-permissive 3D chromatin organization are coordinated, we studied MED1, a representative subunit of the Mediator complex that acts to establish functional preinitiation complexes (PICs)1 that forms biomolecular condensates through an intrinsically disordered region (IDR) to facilitate transcription2, and is implicated in the function of estrogen receptor (hereafter ER) in ER-positive breast cancer (ER+ BC) cells3,4. We found that MED1 is acetylated at 6 lysines in its IDR and, further, that MCF7 ER+ BC cells in which endogenous MED1 is replaced by an ectopic 6KR (non-acetylatable) mutant (6KR cells) exhibit enhanced cell growth and elevated expression of MED1-dependent genes. These results indicate an enhanced function of 6KR MED1 that may be attributed to two mechanisms: (1) reorganized PIC assembly, as indicated by increased MED1 and Pol II, decreased MED17, and equivalent ER occupancies on chromatin, particularly at active enhancers and promoters; (2) sub-TAD chromatin unfolding, as revealed by HiCAR (Hi-C on accessible regulatory DNA) analyses. Furthermore, in vitro assays demonstrate distinct physio-chemical properties of liquid-liquid phase separation (LLPS) for 6KR versus 6KQ MED1 IDRs, and for non-acetylated versus CBP-acetylated WT MED1 IDR fragments. Related, Pol II CTD heptads are sequestered in 6KR and control WT MED1 IDR condensates, but not 6KQ and CBP-acetylated WT MED1 IDR condensates. These findings, in conjunction with recent reports of PIC structures5-7, indicate that MED1 coordinates reorganization of the PIC machinery and the rewiring of regional chromatin organization through acetylation of its IDR. This study leads to an understanding of how the transition in phase behavior of a transcription cofactor acts as a mechanistic hub integrating linear and spatial chromatin functions to support gene expression, and have potential therapeutic implications for diseases involving MED1/Mediator-mediated transcription control.

molecular biology↗

Histone H2A serine-1 phosphorylation is a chaperone-dependent signal for dimerization with H2B and for enhanced deposition

Multiple histone chaperones and histone modifications are involved in the folding, transport, and re-lease of histones onto newly replicated DNA. Little is known about histone H2A-H2B pre-deposition his-tone modifications and their regulation of histone deposition. We previously showed that H2A serine 1 phosphorylation (H2AS1ph) is enriched on the soluble egg histones and on zygotic chromatin in Xenopus embryos. Here, we demonstrate that H2AS1 phosphorylation is required for a timely incorporation of H2A-H2B into the pronuclear chromatin. Our analysis revealed that exogenous H2AS1A-H2B dimers were poorly incorporated into pronuclei in egg extract compared with wildtype and H2AS1E-H2B dimers. Chaperone-mediated deposition using histones purified from pronuclei showed that neither Nap1 nor Nucleoplasmin (Npm2) histone deposition was directly affected by endogenous histone posttranslational modification. We further demonstrate that H2AS1 phosphorylation was dependent on Npm2 and required H2B. Surprisingly, Nap1 was incapable of promoting H2AS1 phosphorylation. These results suggest that serine 1 phosphorylation signals a specific state of H2A-H2B dimer bound by Nucleoplasmin. Neither Npm2 nor Nap1 exhibited preference for binding H2AS1A or H2AS1E mutant histones or dimers with H2B in vitro. We propose that H2AS1 phosphorylation is a pre-deposition modification that signals for the proper dimerization of H2A-H2B, which in turn activates downstream effectors leading to H2A-H2B deposition.

molecular biology↗