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    Date Issued2017 (1)2016 (1)Author
    Knapp, Stefan (2)
    Birnbaum, Mark J. (1)Fillipakopoulos, Panagis (1)Ghari, Fatemeh (1)Hwang, Sung-Yong (1)View MoreUMass Chan AffiliationDepartment of Biochemistry and Molecular Pharmacology (1)Department of Cell and Developmental Biology (1)Department of Radiology (1)Odgren Lab (1)Thompson Lab (1)Document TypeJournal Article (2)KeywordBiochemistry (2)Medicinal-Pharmaceutical Chemistry (2)BRD4 (1)cancer (1)Cell Biology (1)View MoreJournalACS chemical biology (1)Science Advances (1)

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    Selective Targeting of Bromodomains of the Bromodomain-PHD Fingers Family Impairs Osteoclast Differentiation

    Meier, Julia C.; Witwicka, Hanna; Hwang, Sung-Yong; Birnbaum, Mark J.; Knapp, Stefan (2017-10-20)
    Histone acetyltransferases of the MYST family are recruited to chromatin by BRPF scaffolding proteins. We explored functional consequences and the therapeutic potential of inhibitors targeting acetyl-lysine dependent protein interaction domains (bromodomains) present in BRPF1-3 in bone maintenance. We report three potent and selective inhibitors: one (PFI-4) with high selectivity for the BRPF1B isoform and two pan-BRPF bromodomain inhibitors (OF-1, NI-57). The developed inhibitors displaced BRPF bromodomains from chromatin and did not inhibit cell growth and proliferation. Intriguingly, the inhibitors impaired RANKL-induced differentiation of primary murine bone marrow cells and human primary monocytes into bone resorbing osteoclasts by specifically repressing transcriptional programs required for osteoclastogenesis. The data suggest a key role of BRPF in regulating gene expression during osteoclastogenesis, and the excellent druggability of these bromodomains may lead to new treatment strategies for patients suffering from bone loss or osteolytic malignant bone lesions.
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    Citrullination-acetylation interplay guides E2F-1 activity during the inflammatory response

    Ghari, Fatemeh; Quirke, Anne-Marie; Munro, Shonagh; Kawalkowska, Joanna; Picaud, Sarah; McGouran, Joanna; Subramanian, Venkataraman; Muth, Aaron; Williams, Richard; Kessler, Benedikt; et al. (2016-02-05)
    Peptidyl arginine deiminase 4 (PAD4) is a nuclear enzyme that converts arginine residues to citrulline. Although increasingly implicated in inflammatory disease and cancer, the mechanism of action of PAD4 and its functionally relevant pathways remains unclear. E2F transcription factors are a family of master regulators that coordinate gene expression during cellular proliferation and diverse cell fates. We show that E2F-1 is citrullinated by PAD4 in inflammatory cells. Citrullination of E2F-1 assists its chromatin association, specifically to cytokine genes in granulocyte cells. Mechanistically, citrullination augments binding of the BET (bromodomain and extra-terminal domain) family bromodomain reader BRD4 (bromodomain-containing protein 4) to an acetylated domain in E2F-1, and PAD4 and BRD4 coexist with E2F-1 on cytokine gene promoters. Accordingly, the combined inhibition of PAD4 and BRD4 disrupts the chromatin-bound complex and suppresses cytokine gene expression. In the murine collagen-induced arthritis model, chromatin-bound E2F-1 in inflammatory cells and consequent cytokine expression are diminished upon small-molecule inhibition of PAD4 and BRD4, and the combined treatment is clinically efficacious in preventing disease progression. Our results shed light on a new transcription-based mechanism that mediates the inflammatory effect of PAD4 and establish the interplay between citrullination and acetylation in the control of E2F-1 as a regulatory interface for driving inflammatory gene expression.
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