The interaction between the PARP10 protein and the NS1 protein of H5N1 AIV and its effect on virus replication
VIROLOGY JOURNAL
Authors: Yu, Mengbin; Zhang, Chuanfu; Yang, Yutao; Yang, Zhixin; Zhao, Lixia; Xu, Long; Wang, Rong; Zhou, Xiaowei; Huang, Peitang
Abstract
Background: During the process that AIV infect hosts, the NS1 protein can act on hosts, change corresponding signal pathways, promote the translation of virus proteins and result in virus replication. Results: In our study, we found that PARP domain and Glu-rich region of PARP10 interacted with NS1, and the presence of NS1 could induce PARP10 migrate from cytoplasm to nucleus. NS1 high expression could reduce the endogenous PARP10 expression. Cell cycle analysis showed that with inhibited PARP10 expression, NS1 could induce cell arrest in G2-M stage, and the percentage of cells in G2-M stage rise from the previous 10%-45%, consistent with the cell proliferation result. Plague forming unit measurement showed that inhibited PARP10 expression could help virus replication. Conclusions: In a word, our results showed that NS1 acts on host cells and PARP10 plays a regulating role in virus replication.
4-(Phenoxy) and 4-(benzyloxy)benzamides as potent and selective inhibitors of mono-ADP-ribosyltransferase PARP10/ARTD10
EUROPEAN JOURNAL OF MEDICINAL CHEMISTRY
Authors: Murthy, Sudarshan; Desantis, Jenny; Verheugd, Patricia; Maksimainen, Mirko M.; Venkannagari, Harikanth; Massari, Serena; Ashok, Yashwanth; Obaji, Ezeogo; Nkizinkinko, Yves; Luescher, Bernhard; Tabarrini, Oriana; Lehtio, Lari
Abstract
Human Diphtheria toxin-like ADP-ribosyltranferases (ARTD) 10 is an enzyme carrying out mono-ADP-ribosylation of a range of cellular proteins and affecting their activities. It shuttles between cytoplasm and nucleus and influences signaling events in both compartments, such as nuclear factor kappa-light chain-enhancer of activated B cells (NF-kappa B) signaling and S phase DNA repair. Furthermore, over expression of ARTD10 induces cell death. We recently reported on the discovery of a hit compound, OUL35 (compound 1), with 330 nM potency and remarkable selectivity towards ARTD10 over other enzymes in the human protein family. Here we aimed at establishing a structure-activity relationship of the OUL35 scaffold, by evaluating an array of 4-phenoxybenzamide derivatives. By exploring modifications on the linker between the aromatic rings, we identified also a 4-(benzyloxy)benzamide derivative, compound 32, which is potent (IC50= 230 nM) and selective, and like OUL35 was able to rescue HeLa cells from ARTD10-induced cell death. Evaluation of an enlarged series of derivatives produced detailed knowledge on the structural requirements for ARTD10 inhibition and allowed the discovery of further tool compounds with submicromolar cellular potency that will help in understanding the roles of ARTD10 in biological systems. (C) 2018 Elsevier Masson SAS. All rights reserved.