Selective recognition of histone crotonylation by double PHD fingers of MOZ and DPF2.

Nat Chem Biol

MOE Key Laboratory of Protein Sciences, Beijing Advanced Innovation Center for Structural Biology, Department of Basic Medical Sciences, School of Medicine, Tsinghua University, Beijing, China.

Published: December 2016

AI Article Synopsis

  • - Histone covalent modifications, especially new lysine acylations like crotonylation, butyrylation, and propionylation, play a crucial role in epigenetic regulation through 'reader' modules.
  • - The double PHD finger (DPF) domains of proteins MOZ and DPF2 show a strong preference for binding to crotonylated histones, as revealed by detailed structural studies.
  • - Experiments, including immunofluorescence and ChIP-qPCR, demonstrate that MOZ interacts specifically with crotonylated histones, highlighting a novel regulatory mechanism in gene expression influenced by histone modification.

Article Abstract

Recognition of histone covalent modifications by 'reader' modules constitutes a major mechanism for epigenetic regulation. A recent upsurge of newly discovered histone lysine acylations, such as crotonylation (Kcr), butyrylation (Kbu), and propionylation (Kpr), greatly expands the coding potential of histone lysine modifications. Here we demonstrate that the histone acetylation-binding double PHD finger (DPF) domains of human MOZ (also known as KAT6A) and DPF2 (also known as BAF45d) accommodate a wide range of histone lysine acylations with the strongest preference for Kcr. Crystal structures of the DPF domain of MOZ in complex with H3K14cr, H3K14bu, and H3K14pr peptides reveal that these non-acetyl acylations are anchored in a hydrophobic 'dead-end' pocket with selectivity for crotonylation arising from intimate encapsulation and an amide-sensing hydrogen bonding network. Immunofluorescence and chromatin immunoprecipitation (ChIP)-quantitative PCR (qPCR) showed that MOZ and H3K14cr colocalize in a DPF-dependent manner. Our studies call attention to a new regulatory mechanism centered on histone crotonylation readout by DPF family members.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5253430PMC
http://dx.doi.org/10.1038/nchembio.2218DOI Listing

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