Ubiquitinated histone H2B as gatekeeper of the nucleosome acidic patch

Author:

Hicks Chad W1,Rahman Sanim1,Gloor Susan L2,Fields James K1,Husby Natalia Ledo2,Vaidya Anup2,Maier Keith E2,Morgan Michael1,Keogh Michael-Christopher2,Wolberger Cynthia1ORCID

Affiliation:

1. Department of Biophysics & Biophysical Chemistry, Johns Hopkins University School of Medicine , 725 N. Wolfe Street , Baltimore , MD 21205, USA

2. EpiCypher Inc. , 6 Davis Drive , Suite 755, Durham, NC 27709, USA

Abstract

Abstract Monoubiquitination of histones H2B-K120 (H2BK120ub) and H2A-K119 (H2AK119ub) play opposing roles in regulating transcription and chromatin compaction. H2BK120ub is a hallmark of actively transcribed euchromatin, while H2AK119ub is highly enriched in transcriptionally repressed heterochromatin. Whereas H2BK120ub is known to stimulate the binding or activity of various chromatin-modifying enzymes, this post-translational modification (PTM) also interferes with the binding of several proteins to the nucleosome H2A/H2B acidic patch via an unknown mechanism. Here, we report cryoEM structures of an H2BK120ub nucleosome showing that ubiquitin adopts discrete positions that occlude the acidic patch. Molecular dynamics simulations show that ubiquitin remains stably positioned over this nucleosome region. By contrast, our cryoEM structures of H2AK119ub nucleosomes show ubiquitin adopting discrete positions that minimally occlude the acidic patch. Consistent with these observations, H2BK120ub, but not H2AK119ub, abrogates nucleosome interactions with acidic patch-binding proteins RCC1 and LANA, and single-domain antibodies specific to this region. Our results suggest a mechanism by which H2BK120ub serves as a gatekeeper to the acidic patch and point to distinct roles for histone H2AK119 and H2BK120 ubiquitination in regulating protein binding to nucleosomes.

Funder

National Institute of General Medical Sciences

National Cancer Institute

National Institutes of Health

Frederick National Laboratory for Cancer Research

Publisher

Oxford University Press (OUP)

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